From: Wolfgang Bangerth Date: Tue, 11 Apr 2023 17:56:35 +0000 (-0600) Subject: Change line endings of a .cc file from DOS to Unix. X-Git-Url: https://gitweb.dealii.org/cgi-bin/gitweb.cgi?a=commitdiff_plain;h=refs%2Fpull%2F134%2Fhead;p=code-gallery.git Change line endings of a .cc file from DOS to Unix. --- diff --git a/Nonlinear_PoroViscoelasticity/nonlinear-poro-viscoelasticity.cc b/Nonlinear_PoroViscoelasticity/nonlinear-poro-viscoelasticity.cc index fbcb4fe..522abd2 100644 --- a/Nonlinear_PoroViscoelasticity/nonlinear-poro-viscoelasticity.cc +++ b/Nonlinear_PoroViscoelasticity/nonlinear-poro-viscoelasticity.cc @@ -1,5034 +1,5034 @@ -/* --------------------------------------------------------------------- - * - * Copyright (C) 2010 - 2020 by the deal.II authors and - * Ester Comellas and Jean-Paul Pelteret - * - * This file is part of the deal.II library. - * - * The deal.II library is free software; you can use it, redistribute - * it, and/or modify it under the terms of the GNU Lesser General - * Public License as published by the Free Software Foundation; either - * version 2.1 of the License, or (at your option) any later version. - * The full text of the license can be found in the file LICENSE at - * the top level of the deal.II distribution. - * - * --------------------------------------------------------------------- - */ - -/* Authors: Ester Comellas and Jean-Paul Pelteret, - * University of Erlangen-Nuremberg, 2018 - */ - -// We start by including all the necessary deal.II header files and some C++ -// related ones. They have been discussed in detail in previous tutorial -// programs, so you need only refer to past tutorials for details. - -#include -#include -#include -#include -#include -#include -#include -#include -#include -#include - -#include - -#include - -#include -#include -#include - -#include -#include -#include -#include -#include -#include -#include -#include - -#include -#include -#include -#include -#include - -#include -#include -#include -#include -#include -#include - -#include -#include -#include -#include -#include -#include -#include -#include - -#include -#include - -#include -#include -#include -#include -#include - -#include -#include -#include - -#include -#include -#include -#include - - -// We create a namespace for everything that relates to -// the nonlinear poro-viscoelastic formulation, -// and import all the deal.II function and class names into it: -namespace NonLinearPoroViscoElasticity -{ - using namespace dealii; - -// @sect3{Run-time parameters} -// -// Set up a ParameterHandler object to read in the parameter choices at run-time -// introduced by the user through the file "parameters.prm" - namespace Parameters - { -// @sect4{Finite Element system} -// Here we specify the polynomial order used to approximate the solution, -// both for the displacements and pressure unknowns. -// The quadrature order should be adjusted accordingly. - struct FESystem - { - unsigned int poly_degree_displ; - unsigned int poly_degree_pore; - unsigned int quad_order; - - static void - declare_parameters(ParameterHandler &prm); - - void - parse_parameters(ParameterHandler &prm); - }; - - void FESystem::declare_parameters(ParameterHandler &prm) - { - prm.enter_subsection("Finite element system"); - { - prm.declare_entry("Polynomial degree displ", "2", - Patterns::Integer(0), - "Displacement system polynomial order"); - - prm.declare_entry("Polynomial degree pore", "1", - Patterns::Integer(0), - "Pore pressure system polynomial order"); - - prm.declare_entry("Quadrature order", "3", - Patterns::Integer(0), - "Gauss quadrature order"); - } - prm.leave_subsection(); - } - - void FESystem::parse_parameters(ParameterHandler &prm) - { - prm.enter_subsection("Finite element system"); - { - poly_degree_displ = prm.get_integer("Polynomial degree displ"); - poly_degree_pore = prm.get_integer("Polynomial degree pore"); - quad_order = prm.get_integer("Quadrature order"); - } - prm.leave_subsection(); - } - -// @sect4{Geometry} -// These parameters are related to the geometry definition and mesh generation. -// We select the type of problem to solve and introduce the desired load values. - struct Geometry - { - std::string geom_type; - unsigned int global_refinement; - double scale; - std::string load_type; - double load; - unsigned int num_cycle_sets; - double fluid_flow; - double drained_pressure; - - static void - declare_parameters(ParameterHandler &prm); - - void - parse_parameters(ParameterHandler &prm); - }; - - void Geometry::declare_parameters(ParameterHandler &prm) - { - prm.enter_subsection("Geometry"); - { - prm.declare_entry("Geometry type", "Ehlers_tube_step_load", - Patterns::Selection("Ehlers_tube_step_load" - "|Ehlers_tube_increase_load" - "|Ehlers_cube_consolidation" - "|Franceschini_consolidation" - "|Budday_cube_tension_compression" - "|Budday_cube_tension_compression_fully_fixed" - "|Budday_cube_shear_fully_fixed"), - "Type of geometry used. " - "For Ehlers verification examples see Ehlers and Eipper (1999). " - "For Franceschini brain consolidation see Franceschini et al. (2006)" - "For Budday brain examples see Budday et al. (2017)"); - - prm.declare_entry("Global refinement", "1", - Patterns::Integer(0), - "Global refinement level"); - - prm.declare_entry("Grid scale", "1.0", - Patterns::Double(0.0), - "Global grid scaling factor"); - - prm.declare_entry("Load type", "pressure", - Patterns::Selection("pressure|displacement|none"), - "Type of loading"); - - prm.declare_entry("Load value", "-7.5e+6", - Patterns::Double(), - "Loading value"); - - prm.declare_entry("Number of cycle sets", "1", - Patterns::Integer(1,2), - "Number of times each set of 3 cycles is repeated, only for " - "Budday_cube_tension_compression and Budday_cube_tension_compression_fully_fixed. " - "Load value is doubled in second set, load rate is kept constant." - "Final time indicates end of second cycle set."); - - prm.declare_entry("Fluid flow value", "0.0", - Patterns::Double(), - "Prescribed fluid flow. Not implemented in any example yet."); - - prm.declare_entry("Drained pressure", "0.0", - Patterns::Double(), - "Increase of pressure value at drained boundary w.r.t the atmospheric pressure."); - } - prm.leave_subsection(); - } - - void Geometry::parse_parameters(ParameterHandler &prm) - { - prm.enter_subsection("Geometry"); - { - geom_type = prm.get("Geometry type"); - global_refinement = prm.get_integer("Global refinement"); - scale = prm.get_double("Grid scale"); - load_type = prm.get("Load type"); - load = prm.get_double("Load value"); - num_cycle_sets = prm.get_integer("Number of cycle sets"); - fluid_flow = prm.get_double("Fluid flow value"); - drained_pressure = prm.get_double("Drained pressure"); - } - prm.leave_subsection(); - } - -// @sect4{Materials} - -// Here we select the type of material for the solid component -// and define the corresponding material parameters. -// Then we define he fluid data, including the type of -// seepage velocity definition to use. - struct Materials - { - std::string mat_type; - double lambda; - double mu; - double mu1_infty; - double mu2_infty; - double mu3_infty; - double alpha1_infty; - double alpha2_infty; - double alpha3_infty; - double mu1_mode_1; - double mu2_mode_1; - double mu3_mode_1; - double alpha1_mode_1; - double alpha2_mode_1; - double alpha3_mode_1; - double viscosity_mode_1; - std::string fluid_type; - double solid_vol_frac; - double kappa_darcy; - double init_intrinsic_perm; - double viscosity_FR; - double init_darcy_coef; - double weight_FR; - bool gravity_term; - int gravity_direction; - double gravity_value; - double density_FR; - double density_SR; - enum SymmetricTensorEigenvectorMethod eigen_solver; - - static void - declare_parameters(ParameterHandler &prm); - - void - parse_parameters(ParameterHandler &prm); - }; - - void Materials::declare_parameters(ParameterHandler &prm) - { - prm.enter_subsection("Material properties"); - { - prm.declare_entry("material", "Neo-Hooke", - Patterns::Selection("Neo-Hooke|Ogden|visco-Ogden"), - "Type of material used in the problem"); - - prm.declare_entry("lambda", "8.375e6", - Patterns::Double(0,1e100), - "First Lamé parameter for extension function related to compactation point in solid material [Pa]."); - - prm.declare_entry("shear modulus", "5.583e6", - Patterns::Double(0,1e100), - "shear modulus for Neo-Hooke materials [Pa]."); - - prm.declare_entry("eigen solver", "QL Implicit Shifts", - Patterns::Selection("QL Implicit Shifts|Jacobi"), - "The type of eigen solver to be used for Ogden and visco-Ogden models."); - - prm.declare_entry("mu1", "0.0", - Patterns::Double(), - "Shear material parameter 'mu1' for Ogden material [Pa]."); - - prm.declare_entry("mu2", "0.0", - Patterns::Double(), - "Shear material parameter 'mu2' for Ogden material [Pa]."); - - prm.declare_entry("mu3", "0.0", - Patterns::Double(), - "Shear material parameter 'mu1' for Ogden material [Pa]."); - - prm.declare_entry("alpha1", "1.0", - Patterns::Double(), - "Stiffness material parameter 'alpha1' for Ogden material [-]."); - - prm.declare_entry("alpha2", "1.0", - Patterns::Double(), - "Stiffness material parameter 'alpha2' for Ogden material [-]."); - - prm.declare_entry("alpha3", "1.0", - Patterns::Double(), - "Stiffness material parameter 'alpha3' for Ogden material [-]."); - - prm.declare_entry("mu1_1", "0.0", - Patterns::Double(), - "Shear material parameter 'mu1' for first viscous mode in Ogden material [Pa]."); - - prm.declare_entry("mu2_1", "0.0", - Patterns::Double(), - "Shear material parameter 'mu2' for first viscous mode in Ogden material [Pa]."); - - prm.declare_entry("mu3_1", "0.0", - Patterns::Double(), - "Shear material parameter 'mu1' for first viscous mode in Ogden material [Pa]."); - - prm.declare_entry("alpha1_1", "1.0", - Patterns::Double(), - "Stiffness material parameter 'alpha1' for first viscous mode in Ogden material [-]."); - - prm.declare_entry("alpha2_1", "1.0", - Patterns::Double(), - "Stiffness material parameter 'alpha2' for first viscous mode in Ogden material [-]."); - - prm.declare_entry("alpha3_1", "1.0", - Patterns::Double(), - "Stiffness material parameter 'alpha3' for first viscous mode in Ogden material [-]."); - - prm.declare_entry("viscosity_1", "1e-10", - Patterns::Double(1e-10,1e100), - "Deformation-independent viscosity parameter 'eta_1' for first viscous mode in Ogden material [-]."); - - prm.declare_entry("seepage definition", "Ehlers", - Patterns::Selection("Markert|Ehlers"), - "Type of formulation used to define the seepage velocity in the problem. " - "Choose between Markert formulation of deformation-dependent intrinsic permeability " - "and Ehlers formulation of deformation-dependent Darcy flow coefficient."); - - prm.declare_entry("initial solid volume fraction", "0.67", - Patterns::Double(0.001,0.999), - "Initial porosity (solid volume fraction, 0 < n_0s < 1)"); - - prm.declare_entry("kappa", "0.0", - Patterns::Double(0,100), - "Deformation-dependency control parameter for specific permeability (kappa >= 0)"); - - prm.declare_entry("initial intrinsic permeability", "0.0", - Patterns::Double(0,1e100), - "Initial intrinsic permeability parameter [m^2] (isotropic permeability). To be used with Markert formulation."); - - prm.declare_entry("fluid viscosity", "0.0", - Patterns::Double(0, 1e100), - "Effective shear viscosity parameter of the fluid [Pa·s, (N·s)/m^2]. To be used with Markert formulation."); - - prm.declare_entry("initial Darcy coefficient", "1.0e-4", - Patterns::Double(0,1e100), - "Initial Darcy flow coefficient [m/s] (isotropic permeability). To be used with Ehlers formulation."); - - prm.declare_entry("fluid weight", "1.0e4", - Patterns::Double(0, 1e100), - "Effective weight of the fluid [N/m^3]. To be used with Ehlers formulation."); - - prm.declare_entry("gravity term", "false", - Patterns::Bool(), - "Gravity term considered (true) or neglected (false)"); - - prm.declare_entry("fluid density", "1.0", - Patterns::Double(0,1e100), - "Real (or effective) density of the fluid"); - - prm.declare_entry("solid density", "1.0", - Patterns::Double(0,1e100), - "Real (or effective) density of the solid"); - - prm.declare_entry("gravity direction", "2", - Patterns::Integer(0,2), - "Direction of gravity (unit vector 0 for x, 1 for y, 2 for z)"); - - prm.declare_entry("gravity value", "-9.81", - Patterns::Double(), - "Value of gravity (be careful to have consistent units!)"); - } - prm.leave_subsection(); - } - - void Materials::parse_parameters(ParameterHandler &prm) - { - prm.enter_subsection("Material properties"); - { - //Solid - mat_type = prm.get("material"); - lambda = prm.get_double("lambda"); - mu = prm.get_double("shear modulus"); - mu1_infty = prm.get_double("mu1"); - mu2_infty = prm.get_double("mu2"); - mu3_infty = prm.get_double("mu3"); - alpha1_infty = prm.get_double("alpha1"); - alpha2_infty = prm.get_double("alpha2"); - alpha3_infty = prm.get_double("alpha3"); - mu1_mode_1 = prm.get_double("mu1_1"); - mu2_mode_1 = prm.get_double("mu2_1"); - mu3_mode_1 = prm.get_double("mu3_1"); - alpha1_mode_1 = prm.get_double("alpha1_1"); - alpha2_mode_1 = prm.get_double("alpha2_1"); - alpha3_mode_1 = prm.get_double("alpha3_1"); - viscosity_mode_1 = prm.get_double("viscosity_1"); - //Fluid - fluid_type = prm.get("seepage definition"); - solid_vol_frac = prm.get_double("initial solid volume fraction"); - kappa_darcy = prm.get_double("kappa"); - init_intrinsic_perm = prm.get_double("initial intrinsic permeability"); - viscosity_FR = prm.get_double("fluid viscosity"); - init_darcy_coef = prm.get_double("initial Darcy coefficient"); - weight_FR = prm.get_double("fluid weight"); - //Gravity effects - gravity_term = prm.get_bool("gravity term"); - density_FR = prm.get_double("fluid density"); - density_SR = prm.get_double("solid density"); - gravity_direction = prm.get_integer("gravity direction"); - gravity_value = prm.get_double("gravity value"); - - if ( (fluid_type == "Markert") && ((init_intrinsic_perm == 0.0) || (viscosity_FR == 0.0)) ) - AssertThrow(false, ExcMessage("Markert seepage velocity formulation requires the definition of " - "'initial intrinsic permeability' and 'fluid viscosity' greater than 0.0.")); - - if ( (fluid_type == "Ehlers") && ((init_darcy_coef == 0.0) || (weight_FR == 0.0)) ) - AssertThrow(false, ExcMessage("Ehler seepage velocity formulation requires the definition of " - "'initial Darcy coefficient' and 'fluid weight' greater than 0.0.")); - - const std::string eigen_solver_type = prm.get("eigen solver"); - if (eigen_solver_type == "QL Implicit Shifts") - eigen_solver = SymmetricTensorEigenvectorMethod::ql_implicit_shifts; - else if (eigen_solver_type == "Jacobi") - eigen_solver = SymmetricTensorEigenvectorMethod::jacobi; - else - { - AssertThrow(false, ExcMessage("Unknown eigen solver selected.")); - } - } - prm.leave_subsection(); - } - -// @sect4{Nonlinear solver} - -// We now define the tolerances and the maximum number of iterations for the -// Newton-Raphson scheme used to solve the nonlinear system of governing equations. - struct NonlinearSolver - { - unsigned int max_iterations_NR; - double tol_f; - double tol_u; - double tol_p_fluid; - - static void - declare_parameters(ParameterHandler &prm); - - void - parse_parameters(ParameterHandler &prm); - }; - - void NonlinearSolver::declare_parameters(ParameterHandler &prm) - { - prm.enter_subsection("Nonlinear solver"); - { - prm.declare_entry("Max iterations Newton-Raphson", "15", - Patterns::Integer(0), - "Number of Newton-Raphson iterations allowed"); - - prm.declare_entry("Tolerance force", "1.0e-8", - Patterns::Double(0.0), - "Force residual tolerance"); - - prm.declare_entry("Tolerance displacement", "1.0e-6", - Patterns::Double(0.0), - "Displacement error tolerance"); - - prm.declare_entry("Tolerance pore pressure", "1.0e-6", - Patterns::Double(0.0), - "Pore pressure error tolerance"); - } - prm.leave_subsection(); - } - - void NonlinearSolver::parse_parameters(ParameterHandler &prm) - { - prm.enter_subsection("Nonlinear solver"); - { - max_iterations_NR = prm.get_integer("Max iterations Newton-Raphson"); - tol_f = prm.get_double("Tolerance force"); - tol_u = prm.get_double("Tolerance displacement"); - tol_p_fluid = prm.get_double("Tolerance pore pressure"); - } - prm.leave_subsection(); - } - -// @sect4{Time} -// Here we set the timestep size $ \varDelta t $ and the simulation end-time. - struct Time - { - double end_time; - double delta_t; - static void - declare_parameters(ParameterHandler &prm); - - void - parse_parameters(ParameterHandler &prm); - }; - - void Time::declare_parameters(ParameterHandler &prm) - { - prm.enter_subsection("Time"); - { - prm.declare_entry("End time", "10.0", - Patterns::Double(), - "End time"); - - prm.declare_entry("Time step size", "0.002", - Patterns::Double(1.0e-6), - "Time step size. The value must be larger than the displacement error tolerance defined."); - } - prm.leave_subsection(); - } - - void Time::parse_parameters(ParameterHandler &prm) - { - prm.enter_subsection("Time"); - { - end_time = prm.get_double("End time"); - delta_t = prm.get_double("Time step size"); - } - prm.leave_subsection(); - } - - -// @sect4{Output} -// We can choose the frequency of the data for the output files. - struct OutputParam - { - - std::string outfiles_requested; - unsigned int timestep_output; - std::string outtype; - - static void - declare_parameters(ParameterHandler &prm); - - void - parse_parameters(ParameterHandler &prm); - }; - - void OutputParam::declare_parameters(ParameterHandler &prm) - { - prm.enter_subsection("Output parameters"); - { - prm.declare_entry("Output files", "true", - Patterns::Selection("true|false"), - "Paraview output files to generate."); - prm.declare_entry("Time step number output", "1", - Patterns::Integer(0), - "Output data for time steps multiple of the given " - "integer value."); - prm.declare_entry("Averaged results", "nodes", - Patterns::Selection("elements|nodes"), - "Output data associated with integration point values" - " averaged on elements or on nodes."); - } - prm.leave_subsection(); - } - - void OutputParam::parse_parameters(ParameterHandler &prm) - { - prm.enter_subsection("Output parameters"); - { - outfiles_requested = prm.get("Output files"); - timestep_output = prm.get_integer("Time step number output"); - outtype = prm.get("Averaged results"); - } - prm.leave_subsection(); - } - -// @sect4{All parameters} -// We finally consolidate all of the above structures into a single container that holds all the run-time selections. - struct AllParameters : public FESystem, - public Geometry, - public Materials, - public NonlinearSolver, - public Time, - public OutputParam - { - AllParameters(const std::string &input_file); - - static void - declare_parameters(ParameterHandler &prm); - - void - parse_parameters(ParameterHandler &prm); - }; - - AllParameters::AllParameters(const std::string &input_file) - { - ParameterHandler prm; - declare_parameters(prm); - prm.parse_input(input_file); - parse_parameters(prm); - } - - void AllParameters::declare_parameters(ParameterHandler &prm) - { - FESystem::declare_parameters(prm); - Geometry::declare_parameters(prm); - Materials::declare_parameters(prm); - NonlinearSolver::declare_parameters(prm); - Time::declare_parameters(prm); - OutputParam::declare_parameters(prm); - } - - void AllParameters::parse_parameters(ParameterHandler &prm) - { - FESystem::parse_parameters(prm); - Geometry::parse_parameters(prm); - Materials::parse_parameters(prm); - NonlinearSolver::parse_parameters(prm); - Time::parse_parameters(prm); - OutputParam::parse_parameters(prm); - } - } - -// @sect3{Time class} -// A simple class to store time data. -// For simplicity we assume a constant time step size. - class Time - { - public: - Time (const double time_end, - const double delta_t) - : - timestep(0), - time_current(0.0), - time_end(time_end), - delta_t(delta_t) - {} - - virtual ~Time() - {} - - double get_current() const - { - return time_current; - } - double get_end() const - { - return time_end; - } - double get_delta_t() const - { - return delta_t; - } - unsigned int get_timestep() const - { - return timestep; - } - void increment_time () - { - time_current += delta_t; - ++timestep; - } - - private: - unsigned int timestep; - double time_current; - double time_end; - const double delta_t; - }; - -// @sect3{Constitutive equation for the solid component of the biphasic material} - -//@sect4{Base class: generic hyperelastic material} -// The ``extra" Kirchhoff stress in the solid component is the sum of isochoric -// and a volumetric part. -// $\mathbf{\tau} = \mathbf{\tau}_E^{(\bullet)} + \mathbf{\tau}^{\textrm{vol}}$ -// The deviatoric part changes depending on the type of material model selected: -// Neo-Hooken hyperelasticity, Ogden hyperelasticiy, -// or a single-mode finite viscoelasticity based on the Ogden hyperelastic model. -// In this base class we declare it as a virtual function, -// and it will be defined for each model type in the corresponding derived class. -// We define here the volumetric component, which depends on the -// extension function $U(J_S)$ selected, and in this case is the same for all models. -// We use the function proposed by -// Ehlers & Eipper 1999 doi:10.1023/A:1006565509095 -// We also define some public functions to access and update the internal variables. - template > - class Material_Hyperelastic - { - public: - Material_Hyperelastic(const Parameters::AllParameters ¶meters, - const Time &time) - : - n_OS (parameters.solid_vol_frac), - lambda (parameters.lambda), - time(time), - det_F (1.0), - det_F_converged (1.0), - eigen_solver (parameters.eigen_solver) - {} - ~Material_Hyperelastic() - {} - - SymmetricTensor<2, dim, NumberType> - get_tau_E(const Tensor<2,dim, NumberType> &F) const - { - return ( get_tau_E_base(F) + get_tau_E_ext_func(F) ); - } - - SymmetricTensor<2, dim, NumberType> - get_Cauchy_E(const Tensor<2, dim, NumberType> &F) const - { - const NumberType det_F = determinant(F); - Assert(det_F > 0, ExcInternalError()); - return get_tau_E(F)*NumberType(1/det_F); - } - - double - get_converged_det_F() const - { - return det_F_converged; - } - - virtual void - update_end_timestep() - { - det_F_converged = det_F; - } - - virtual void - update_internal_equilibrium( const Tensor<2, dim, NumberType> &F ) - { - det_F = Tensor<0,dim,double>(determinant(F)); - } - - virtual double - get_viscous_dissipation( ) const = 0; - - const double n_OS; - const double lambda; - const Time &time; - double det_F; - double det_F_converged; - const enum SymmetricTensorEigenvectorMethod eigen_solver; - - protected: - SymmetricTensor<2, dim, NumberType> - get_tau_E_ext_func(const Tensor<2,dim, NumberType> &F) const - { - const NumberType det_F = determinant(F); - Assert(det_F > 0, ExcInternalError()); - - static const SymmetricTensor< 2, dim, double> - I (Physics::Elasticity::StandardTensors::I); - return ( NumberType(lambda * (1.0-n_OS)*(1.0-n_OS) - * (det_F/(1.0-n_OS) - det_F/(det_F-n_OS))) * I ); - } - - virtual SymmetricTensor<2, dim, NumberType> - get_tau_E_base(const Tensor<2,dim, NumberType> &F) const = 0; - }; - -//@sect4{Derived class: Neo-Hookean hyperelastic material} - template > - class NeoHooke : public Material_Hyperelastic < dim, NumberType > - { - public: - NeoHooke(const Parameters::AllParameters ¶meters, - const Time &time) - : - Material_Hyperelastic< dim, NumberType > (parameters,time), - mu(parameters.mu) - {} - virtual ~NeoHooke() - {} - - double - get_viscous_dissipation() const override - { - return 0.0; - } - - protected: - const double mu; - - SymmetricTensor<2, dim, NumberType> - get_tau_E_base(const Tensor<2,dim, NumberType> &F) const override - { - static const SymmetricTensor< 2, dim, double> - I (Physics::Elasticity::StandardTensors::I); - - const bool use_standard_model = true; - - if (use_standard_model) - { - // Standard Neo-Hooke - return ( mu * ( symmetrize(F * transpose(F)) - I ) ); - } - else - { - // Neo-Hooke in terms of principal stretches - const SymmetricTensor<2, dim, NumberType> - B = symmetrize(F * transpose(F)); - const std::array< std::pair< NumberType, Tensor< 1, dim, NumberType > >, dim > - eigen_B = eigenvectors(B, this->eigen_solver); - - SymmetricTensor<2, dim, NumberType> B_ev; - for (unsigned int d=0; d > - class Ogden : public Material_Hyperelastic < dim, NumberType > - { - public: - Ogden(const Parameters::AllParameters ¶meters, - const Time &time) - : - Material_Hyperelastic< dim, NumberType > (parameters,time), - mu({parameters.mu1_infty, - parameters.mu2_infty, - parameters.mu3_infty}), - alpha({parameters.alpha1_infty, - parameters.alpha2_infty, - parameters.alpha3_infty}) - {} - virtual ~Ogden() - {} - - double - get_viscous_dissipation() const override - { - return 0.0; - } - - protected: - std::vector mu; - std::vector alpha; - - SymmetricTensor<2, dim, NumberType> - get_tau_E_base(const Tensor<2,dim, NumberType> &F) const override - { - const SymmetricTensor<2, dim, NumberType> - B = symmetrize(F * transpose(F)); - - const std::array< std::pair< NumberType, Tensor< 1, dim, NumberType > >, dim > - eigen_B = eigenvectors(B, this->eigen_solver); - - SymmetricTensor<2, dim, NumberType> tau; - static const SymmetricTensor< 2, dim, double> - I (Physics::Elasticity::StandardTensors::I); - - for (unsigned int i = 0; i < 3; ++i) - { - for (unsigned int A = 0; A < dim; ++A) - { - SymmetricTensor<2, dim, NumberType> tau_aux1 = symmetrize( - outer_product(eigen_B[A].second,eigen_B[A].second)); - tau_aux1 *= mu[i]*std::pow(eigen_B[A].first, (alpha[i]/2.) ); - tau += tau_aux1; - } - SymmetricTensor<2, dim, NumberType> tau_aux2 (I); - tau_aux2 *= mu[i]; - tau -= tau_aux2; - } - return tau; - } - }; - -//@sect4{Derived class: Single-mode Ogden viscoelastic material} -// We use the finite viscoelastic model described in -// Reese & Govindjee (1998) doi:10.1016/S0020-7683(97)00217-5 -// The algorithm for the implicit exponential time integration is given in -// Budday et al. (2017) doi: 10.1016/j.actbio.2017.06.024 - template > - class visco_Ogden : public Material_Hyperelastic < dim, NumberType > - { - public: - visco_Ogden(const Parameters::AllParameters ¶meters, - const Time &time) - : - Material_Hyperelastic< dim, NumberType > (parameters,time), - mu_infty({parameters.mu1_infty, - parameters.mu2_infty, - parameters.mu3_infty}), - alpha_infty({parameters.alpha1_infty, - parameters.alpha2_infty, - parameters.alpha3_infty}), - mu_mode_1({parameters.mu1_mode_1, - parameters.mu2_mode_1, - parameters.mu3_mode_1}), - alpha_mode_1({parameters.alpha1_mode_1, - parameters.alpha2_mode_1, - parameters.alpha3_mode_1}), - viscosity_mode_1(parameters.viscosity_mode_1), - Cinv_v_1(Physics::Elasticity::StandardTensors::I), - Cinv_v_1_converged(Physics::Elasticity::StandardTensors::I) - {} - virtual ~visco_Ogden() - {} - - void - update_internal_equilibrium( const Tensor<2, dim, NumberType> &F ) override - { - Material_Hyperelastic < dim, NumberType >::update_internal_equilibrium(F); - - this->Cinv_v_1 = this->Cinv_v_1_converged; - SymmetricTensor<2, dim, NumberType> B_e_1_tr = symmetrize(F * this->Cinv_v_1 * transpose(F)); - - const std::array< std::pair< NumberType, Tensor< 1, dim, NumberType > >, dim > - eigen_B_e_1_tr = eigenvectors(B_e_1_tr, this->eigen_solver); - - Tensor< 1, dim, NumberType > lambdas_e_1_tr; - Tensor< 1, dim, NumberType > epsilon_e_1_tr; - for (int a = 0; a < dim; ++a) - { - lambdas_e_1_tr[a] = std::sqrt(eigen_B_e_1_tr[a].first); - epsilon_e_1_tr[a] = std::log(lambdas_e_1_tr[a]); - } - - const double tolerance = 1e-8; - double residual_check = tolerance*10.0; - Tensor< 1, dim, NumberType > residual; - Tensor< 2, dim, NumberType > tangent; - static const SymmetricTensor< 2, dim, double> I(Physics::Elasticity::StandardTensors::I); - NumberType J_e_1 = std::sqrt(determinant(B_e_1_tr)); - - std::vector lambdas_e_1_iso(dim); - SymmetricTensor<2, dim, NumberType> B_e_1; - int iteration = 0; - - Tensor< 1, dim, NumberType > lambdas_e_1; - Tensor< 1, dim, NumberType > epsilon_e_1; - epsilon_e_1 = epsilon_e_1_tr; - - while(residual_check > tolerance) - { - NumberType aux_J_e_1 = 1.0; - for (unsigned int a = 0; a < dim; ++a) - { - lambdas_e_1[a] = std::exp(epsilon_e_1[a]); - aux_J_e_1 *= lambdas_e_1[a]; - } - - J_e_1 = aux_J_e_1; - - for (unsigned int a = 0; a < dim; ++a) - lambdas_e_1_iso[a] = lambdas_e_1[a]*std::pow(J_e_1,-1.0/dim); - - for (unsigned int a = 0; a < dim; ++a) - { - residual[a] = get_beta_mode_1(lambdas_e_1_iso, a); - residual[a] *= this->time.get_delta_t()/(2.0*viscosity_mode_1); - residual[a] += epsilon_e_1[a]; - residual[a] -= epsilon_e_1_tr[a]; - - for (unsigned int b = 0; b < dim; ++b) - { - tangent[a][b] = get_gamma_mode_1(lambdas_e_1_iso, a, b); - tangent[a][b] *= this->time.get_delta_t()/(2.0*viscosity_mode_1); - tangent[a][b] += I[a][b]; - } - - } - epsilon_e_1 -= invert(tangent)*residual; - - residual_check = 0.0; - for (unsigned int a = 0; a < dim; ++a) - { - if ( std::abs(residual[a]) > residual_check) - residual_check = std::abs(Tensor<0,dim,double>(residual[a])); - } - iteration += 1; - if (iteration > 15 ) - AssertThrow(false, ExcMessage("No convergence in local Newton iteration for the " - "viscoelastic exponential time integration algorithm.")); - } - - NumberType aux_J_e_1 = 1.0; - for (unsigned int a = 0; a < dim; ++a) - { - lambdas_e_1[a] = std::exp(epsilon_e_1[a]); - aux_J_e_1 *= lambdas_e_1[a]; - } - J_e_1 = aux_J_e_1; - - for (unsigned int a = 0; a < dim; ++a) - lambdas_e_1_iso[a] = lambdas_e_1[a]*std::pow(J_e_1,-1.0/dim); - - for (unsigned int a = 0; a < dim; ++a) - { - SymmetricTensor<2, dim, NumberType> - B_e_1_aux = symmetrize(outer_product(eigen_B_e_1_tr[a].second,eigen_B_e_1_tr[a].second)); - B_e_1_aux *= lambdas_e_1[a] * lambdas_e_1[a]; - B_e_1 += B_e_1_aux; - } - - Tensor<2, dim, NumberType>Cinv_v_1_AD = symmetrize(invert(F) * B_e_1 * invert(transpose(F))); - - this->tau_neq_1 = 0; - for (unsigned int a = 0; a < dim; ++a) - { - SymmetricTensor<2, dim, NumberType> - tau_neq_1_aux = symmetrize(outer_product(eigen_B_e_1_tr[a].second,eigen_B_e_1_tr[a].second)); - tau_neq_1_aux *= get_beta_mode_1(lambdas_e_1_iso, a); - this->tau_neq_1 += tau_neq_1_aux; - } - - // Store history - for (unsigned int a = 0; a < dim; ++a) - for (unsigned int b = 0; b < dim; ++b) - this->Cinv_v_1[a][b]= Tensor<0,dim,double>(Cinv_v_1_AD[a][b]); - } - - void update_end_timestep() override - { - Material_Hyperelastic < dim, NumberType >::update_end_timestep(); - this->Cinv_v_1_converged = this->Cinv_v_1; - } - - double get_viscous_dissipation() const override - { - NumberType dissipation_term = get_tau_E_neq() * get_tau_E_neq(); //Double contract the two SymmetricTensor - dissipation_term /= (2*viscosity_mode_1); - - return dissipation_term.val(); - } - - protected: - std::vector mu_infty; - std::vector alpha_infty; - std::vector mu_mode_1; - std::vector alpha_mode_1; - double viscosity_mode_1; - SymmetricTensor<2, dim, double> Cinv_v_1; - SymmetricTensor<2, dim, double> Cinv_v_1_converged; - SymmetricTensor<2, dim, NumberType> tau_neq_1; - - SymmetricTensor<2, dim, NumberType> - get_tau_E_base(const Tensor<2,dim, NumberType> &F) const override - { - return ( get_tau_E_neq() + get_tau_E_eq(F) ); - } - - SymmetricTensor<2, dim, NumberType> - get_tau_E_eq(const Tensor<2,dim, NumberType> &F) const - { - const SymmetricTensor<2, dim, NumberType> B = symmetrize(F * transpose(F)); - - std::array< std::pair< NumberType, Tensor< 1, dim, NumberType > >, dim > eigen_B; - eigen_B = eigenvectors(B, this->eigen_solver); - - SymmetricTensor<2, dim, NumberType> tau; - static const SymmetricTensor< 2, dim, double> - I (Physics::Elasticity::StandardTensors::I); - - for (unsigned int i = 0; i < 3; ++i) - { - for (unsigned int A = 0; A < dim; ++A) - { - SymmetricTensor<2, dim, NumberType> tau_aux1 = symmetrize( - outer_product(eigen_B[A].second,eigen_B[A].second)); - tau_aux1 *= mu_infty[i]*std::pow(eigen_B[A].first, (alpha_infty[i]/2.) ); - tau += tau_aux1; - } - SymmetricTensor<2, dim, NumberType> tau_aux2 (I); - tau_aux2 *= mu_infty[i]; - tau -= tau_aux2; - } - return tau; - } - - SymmetricTensor<2, dim, NumberType> - get_tau_E_neq() const - { - return tau_neq_1; - } - - NumberType - get_beta_mode_1(std::vector< NumberType > &lambda, const int &A) const - { - NumberType beta = 0.0; - - for (unsigned int i = 0; i < 3; ++i) //3rd-order Ogden model - { - - NumberType aux = 0.0; - for (int p = 0; p < dim; ++p) - aux += std::pow(lambda[p],alpha_mode_1[i]); - - aux *= -1.0/dim; - aux += std::pow(lambda[A], alpha_mode_1[i]); - aux *= mu_mode_1[i]; - - beta += aux; - } - return beta; - } - - NumberType - get_gamma_mode_1(std::vector< NumberType > &lambda, - const int &A, - const int &B ) const - { - NumberType gamma = 0.0; - - if (A==B) - { - for (unsigned int i = 0; i < 3; ++i) - { - NumberType aux = 0.0; - for (int p = 0; p < dim; ++p) - aux += std::pow(lambda[p],alpha_mode_1[i]); - - aux *= 1.0/(dim*dim); - aux += 1.0/dim * std::pow(lambda[A], alpha_mode_1[i]); - aux *= mu_mode_1[i]*alpha_mode_1[i]; - - gamma += aux; - } - } - else - { - for (unsigned int i = 0; i < 3; ++i) - { - NumberType aux = 0.0; - for (int p = 0; p < dim; ++p) - aux += std::pow(lambda[p],alpha_mode_1[i]); - - aux *= 1.0/(dim*dim); - aux -= 1.0/dim * std::pow(lambda[A], alpha_mode_1[i]); - aux -= 1.0/dim * std::pow(lambda[B], alpha_mode_1[i]); - aux *= mu_mode_1[i]*alpha_mode_1[i]; - - gamma += aux; - } - } - - return gamma; - } - }; - - -// @sect3{Constitutive equation for the fluid component of the biphasic material} -// We consider two slightly different definitions to define the seepage velocity with a Darcy-like law. -// Ehlers & Eipper 1999, doi:10.1023/A:1006565509095 -// Markert 2007, doi:10.1007/s11242-007-9107-6 -// The selection of one or another is made by the user via the parameters file. - template > - class Material_Darcy_Fluid - { - public: - Material_Darcy_Fluid(const Parameters::AllParameters ¶meters) - : - fluid_type(parameters.fluid_type), - n_OS(parameters.solid_vol_frac), - initial_intrinsic_permeability(parameters.init_intrinsic_perm), - viscosity_FR(parameters.viscosity_FR), - initial_darcy_coefficient(parameters.init_darcy_coef), - weight_FR(parameters.weight_FR), - kappa_darcy(parameters.kappa_darcy), - gravity_term(parameters.gravity_term), - density_FR(parameters.density_FR), - gravity_direction(parameters.gravity_direction), - gravity_value(parameters.gravity_value) - { - Assert(kappa_darcy >= 0, ExcInternalError()); - } - ~Material_Darcy_Fluid() - {} - - Tensor<1, dim, NumberType> get_seepage_velocity_current - (const Tensor<2,dim, NumberType> &F, - const Tensor<1,dim, NumberType> &grad_p_fluid) const - { - const NumberType det_F = determinant(F); - Assert(det_F > 0.0, ExcInternalError()); - - Tensor<2, dim, NumberType> permeability_term; - - if (fluid_type == "Markert") - permeability_term = get_instrinsic_permeability_current(F) / viscosity_FR; - - else if (fluid_type == "Ehlers") - permeability_term = get_darcy_flow_current(F) / weight_FR; - - else - AssertThrow(false, ExcMessage( - "Material_Darcy_Fluid --> Only Markert " - "and Ehlers formulations have been implemented.")); - - return ( -1.0 * permeability_term * det_F - * (grad_p_fluid - get_body_force_FR_current()) ); - } - - double get_porous_dissipation(const Tensor<2,dim, NumberType> &F, - const Tensor<1,dim, NumberType> &grad_p_fluid) const - { - NumberType dissipation_term; - Tensor<1, dim, NumberType> seepage_velocity; - Tensor<2, dim, NumberType> permeability_term; - - const NumberType det_F = determinant(F); - Assert(det_F > 0.0, ExcInternalError()); - - if (fluid_type == "Markert") - { - permeability_term = get_instrinsic_permeability_current(F) / viscosity_FR; - seepage_velocity = get_seepage_velocity_current(F,grad_p_fluid); - } - else if (fluid_type == "Ehlers") - { - permeability_term = get_darcy_flow_current(F) / weight_FR; - seepage_velocity = get_seepage_velocity_current(F,grad_p_fluid); - } - else - AssertThrow(false, ExcMessage( - "Material_Darcy_Fluid --> Only Markert and Ehlers " - "formulations have been implemented.")); - - dissipation_term = ( invert(permeability_term) * seepage_velocity ) * seepage_velocity; - dissipation_term *= 1.0/(det_F*det_F); - return Tensor<0,dim,double>(dissipation_term); - } - - protected: - const std::string fluid_type; - const double n_OS; - const double initial_intrinsic_permeability; - const double viscosity_FR; - const double initial_darcy_coefficient; - const double weight_FR; - const double kappa_darcy; - const bool gravity_term; - const double density_FR; - const int gravity_direction; - const double gravity_value; - - Tensor<2, dim, NumberType> - get_instrinsic_permeability_current(const Tensor<2,dim, NumberType> &F) const - { - static const SymmetricTensor< 2, dim, double> - I (Physics::Elasticity::StandardTensors::I); - const Tensor<2, dim, NumberType> initial_instrinsic_permeability_tensor - = Tensor<2, dim, double>(initial_intrinsic_permeability * I); - - const NumberType det_F = determinant(F); - Assert(det_F > 0.0, ExcInternalError()); - - const NumberType fraction = (det_F - n_OS)/(1 - n_OS); - return ( NumberType (std::pow(fraction, kappa_darcy)) - * initial_instrinsic_permeability_tensor ); - } - - Tensor<2, dim, NumberType> - get_darcy_flow_current(const Tensor<2,dim, NumberType> &F) const - { - static const SymmetricTensor< 2, dim, double> - I (Physics::Elasticity::StandardTensors::I); - const Tensor<2, dim, NumberType> initial_darcy_flow_tensor - = Tensor<2, dim, double>(initial_darcy_coefficient * I); - - const NumberType det_F = determinant(F); - Assert(det_F > 0.0, ExcInternalError()); - - const NumberType fraction = (1.0 - (n_OS / det_F) )/(1.0 - n_OS); - return ( NumberType (std::pow(fraction, kappa_darcy)) - * initial_darcy_flow_tensor); - } - - Tensor<1, dim, NumberType> - get_body_force_FR_current() const - { - Tensor<1, dim, NumberType> body_force_FR_current; - - if (gravity_term == true) - { - Tensor<1, dim, NumberType> gravity_vector; - gravity_vector[gravity_direction] = gravity_value; - body_force_FR_current = density_FR * gravity_vector; - } - return body_force_FR_current; - } - }; - -// @sect3{Quadrature point history} -// As seen in step-18, the PointHistory class offers a method -// for storing data at the quadrature points. Here each quadrature point -// holds a pointer to a material description. Thus, different material models -// can be used in different regions of the domain. Among other data, we -// choose to store the ``extra" Kirchhoff stress $\boldsymbol{\tau}_E$ and -// the dissipation values $\mathcal{D}_p$ and $\mathcal{D}_v$. - template > //double> - class PointHistory - { - public: - PointHistory() - {} - - virtual ~PointHistory() - {} - - void setup_lqp (const Parameters::AllParameters ¶meters, - const Time &time) - { - if (parameters.mat_type == "Neo-Hooke") - solid_material.reset(new NeoHooke(parameters,time)); - else if (parameters.mat_type == "Ogden") - solid_material.reset(new Ogden(parameters,time)); - else if (parameters.mat_type == "visco-Ogden") - solid_material.reset(new visco_Ogden(parameters,time)); - else - Assert (false, ExcMessage("Material type not implemented")); - - fluid_material.reset(new Material_Darcy_Fluid(parameters)); - } - - SymmetricTensor<2, dim, NumberType> - get_tau_E(const Tensor<2, dim, NumberType> &F) const - { - return solid_material->get_tau_E(F); - } - - SymmetricTensor<2, dim, NumberType> - get_Cauchy_E(const Tensor<2, dim, NumberType> &F) const - { - return solid_material->get_Cauchy_E(F); - } - - double - get_converged_det_F() const - { - return solid_material->get_converged_det_F(); - } - - void - update_end_timestep() - { - solid_material->update_end_timestep(); - } - - void - update_internal_equilibrium(const Tensor<2, dim, NumberType> &F ) - { - solid_material->update_internal_equilibrium(F); - } - - double - get_viscous_dissipation() const - { - return solid_material->get_viscous_dissipation(); - } - - Tensor<1,dim, NumberType> - get_seepage_velocity_current (const Tensor<2,dim, NumberType> &F, - const Tensor<1,dim, NumberType> &grad_p_fluid) const - { - return fluid_material->get_seepage_velocity_current(F, grad_p_fluid); - } - - double - get_porous_dissipation(const Tensor<2,dim, NumberType> &F, - const Tensor<1,dim, NumberType> &grad_p_fluid) const - { - return fluid_material->get_porous_dissipation(F, grad_p_fluid); - } - - Tensor<1, dim, NumberType> - get_overall_body_force (const Tensor<2,dim, NumberType> &F, - const Parameters::AllParameters ¶meters) const - { - Tensor<1, dim, NumberType> body_force; - - if (parameters.gravity_term == true) - { - const NumberType det_F_AD = determinant(F); - Assert(det_F_AD > 0.0, ExcInternalError()); - - const NumberType overall_density_ref - = parameters.density_SR * parameters.solid_vol_frac - + parameters.density_FR - * (det_F_AD - parameters.solid_vol_frac); - - Tensor<1, dim, NumberType> gravity_vector; - gravity_vector[parameters.gravity_direction] = parameters.gravity_value; - body_force = overall_density_ref * gravity_vector; - } - - return body_force; - } - private: - std::shared_ptr< Material_Hyperelastic > solid_material; - std::shared_ptr< Material_Darcy_Fluid > fluid_material; - }; - -// @sect3{Nonlinear poro-viscoelastic solid} -// The Solid class is the central class as it represents the problem at hand: -// the nonlinear poro-viscoelastic solid - template - class Solid - { - public: - Solid(const Parameters::AllParameters ¶meters); - virtual ~Solid(); - void run(); - - protected: - using ADNumberType = Sacado::Fad::DFad; - - std::ofstream outfile; - std::ofstream pointfile; - - struct PerTaskData_ASM; - template struct ScratchData_ASM; - - //Generate mesh - virtual void make_grid() = 0; - - //Define points for post-processing - virtual void define_tracked_vertices(std::vector > &tracked_vertices) = 0; - - //Set up the finite element system to be solved: - void system_setup(TrilinosWrappers::MPI::BlockVector &solution_delta_OUT); - - //Extract sub-blocks from the global matrix - void determine_component_extractors(); - - // Several functions to assemble the system and right hand side matrices using multithreading. - void assemble_system - (const TrilinosWrappers::MPI::BlockVector &solution_delta_OUT ); - void assemble_system_one_cell - (const typename DoFHandler::active_cell_iterator &cell, - ScratchData_ASM &scratch, - PerTaskData_ASM &data) const; - void copy_local_to_global_system(const PerTaskData_ASM &data); - - // Define boundary conditions - virtual void make_constraints(const int &it_nr); - virtual void make_dirichlet_constraints(AffineConstraints &constraints) = 0; - virtual Tensor<1,dim> get_neumann_traction - (const types::boundary_id &boundary_id, - const Point &pt, - const Tensor<1,dim> &N) const = 0; - virtual double get_prescribed_fluid_flow - (const types::boundary_id &boundary_id, - const Point &pt) const = 0; - virtual types::boundary_id - get_reaction_boundary_id_for_output () const = 0; - virtual std::pair - get_drained_boundary_id_for_output () const = 0; - virtual std::vector get_dirichlet_load - (const types::boundary_id &boundary_id, - const int &direction) const = 0; - - // Create and update the quadrature points. - void setup_qph(); - - //Solve non-linear system using a Newton-Raphson scheme - void solve_nonlinear_timestep(TrilinosWrappers::MPI::BlockVector &solution_delta_OUT); - - //Solve the linearized equations using a direct solver - void solve_linear_system ( TrilinosWrappers::MPI::BlockVector &newton_update_OUT); - - //Retrieve the solution - TrilinosWrappers::MPI::BlockVector - get_total_solution(const TrilinosWrappers::MPI::BlockVector &solution_delta_IN) const; - - // Store the converged values of the internal variables at the end of each timestep - void update_end_timestep(); - - //Post-processing and writing data to files - void output_results_to_vtu(const unsigned int timestep, - const double current_time, - TrilinosWrappers::MPI::BlockVector solution) const; - void output_results_to_plot(const unsigned int timestep, - const double current_time, - TrilinosWrappers::MPI::BlockVector solution, - std::vector > &tracked_vertices, - std::ofstream &pointfile) const; - - // Headers and footer for the output files - void print_console_file_header( std::ofstream &outfile) const; - void print_plot_file_header(std::vector > &tracked_vertices, - std::ofstream &pointfile) const; - void print_console_file_footer(std::ofstream &outfile) const; - void print_plot_file_footer( std::ofstream &pointfile) const; - - // For parallel communication - MPI_Comm mpi_communicator; - const unsigned int n_mpi_processes; - const unsigned int this_mpi_process; - mutable ConditionalOStream pcout; - - // A collection of the parameters used to describe the problem setup - const Parameters::AllParameters ¶meters; - - // Declare an instance of dealii Triangulation class (mesh) - parallel::shared::Triangulation triangulation; - - // Keep track of the current time and the time spent evaluating certain functions - Time time; - TimerOutput timerconsole; - TimerOutput timerfile; - - // A storage object for quadrature point information. - CellDataStorage::cell_iterator, PointHistory > quadrature_point_history; - - //Integers to store polynomial degree (needed for output) - const unsigned int degree_displ; - const unsigned int degree_pore; - - //Declare an instance of dealii FESystem class (finite element definition) - const FESystem fe; - - //Declare an instance of dealii DoFHandler class (assign DoFs to mesh) - DoFHandler dof_handler_ref; - - //Integer to store DoFs per element (this value will be used often) - const unsigned int dofs_per_cell; - - //Declare an instance of dealii Extractor objects used to retrieve information from the solution vectors - //We will use "u_fe" and "p_fluid_fe"as subscript in operator [] expressions on FEValues and FEFaceValues - //objects to extract the components of the displacement vector and fluid pressure, respectively. - const FEValuesExtractors::Vector u_fe; - const FEValuesExtractors::Scalar p_fluid_fe; - - // Description of how the block-system is arranged. There are 3 blocks: - // 0 - vector DOF displacements u - // 1 - scalar DOF fluid pressure p_fluid - static const unsigned int n_blocks = 2; - static const unsigned int n_components = dim+1; - static const unsigned int first_u_component = 0; - static const unsigned int p_fluid_component = dim; - - enum - { - u_block = 0, - p_fluid_block = 1 - }; - - // Extractors - const FEValuesExtractors::Scalar x_displacement; - const FEValuesExtractors::Scalar y_displacement; - const FEValuesExtractors::Scalar z_displacement; - const FEValuesExtractors::Scalar pressure; - - // Block data - std::vector block_component; - - // DoF index data - std::vector all_locally_owned_dofs; - IndexSet locally_owned_dofs; - IndexSet locally_relevant_dofs; - std::vector locally_owned_partitioning; - std::vector locally_relevant_partitioning; - - std::vector dofs_per_block; - std::vector element_indices_u; - std::vector element_indices_p_fluid; - - //Declare an instance of dealii QGauss class (The Gauss-Legendre family of quadrature rules for numerical integration) - //Gauss Points in element, with n quadrature points (in each space direction ) - const QGauss qf_cell; - //Gauss Points on element faces (used for definition of BCs) - const QGauss qf_face; - //Integer to store num GPs per element (this value will be used often) - const unsigned int n_q_points; - //Integer to store num GPs per face (this value will be used often) - const unsigned int n_q_points_f; - - //Declare an instance of dealii AffineConstraints class (linear constraints on DoFs due to hanging nodes or BCs) - AffineConstraints constraints; - - //Declare an instance of dealii classes necessary for FE system set-up and assembly - //Store elements of tangent matrix (indicated by SparsityPattern class) as sparse matrix (more efficient) - TrilinosWrappers::BlockSparseMatrix tangent_matrix; - TrilinosWrappers::BlockSparseMatrix tangent_matrix_preconditioner; - //Right hand side vector of forces - TrilinosWrappers::MPI::BlockVector system_rhs; - //Total displacement values + pressure (accumulated solution to FE system) - TrilinosWrappers::MPI::BlockVector solution_n; - - // Non-block system for the direct solver. We will copy the block system into these to solve the linearized system of equations. - TrilinosWrappers::SparseMatrix tangent_matrix_nb; - TrilinosWrappers::MPI::Vector system_rhs_nb; - - //We define variables to store norms and update norms and normalisation factors. - struct Errors - { - Errors() - : - norm(1.0), u(1.0), p_fluid(1.0) - {} - - void reset() - { - norm = 1.0; - u = 1.0; - p_fluid = 1.0; - } - void normalise(const Errors &rhs) - { - if (rhs.norm != 0.0) - norm /= rhs.norm; - if (rhs.u != 0.0) - u /= rhs.u; - if (rhs.p_fluid != 0.0) - p_fluid /= rhs.p_fluid; - } - - double norm, u, p_fluid; - }; - - //Declare several instances of the "Error" structure - Errors error_residual, error_residual_0, error_residual_norm, error_update, - error_update_0, error_update_norm; - - // Methods to calculate error measures - void get_error_residual(Errors &error_residual_OUT); - void get_error_update - (const TrilinosWrappers::MPI::BlockVector &newton_update_IN, - Errors &error_update_OUT); - - // Print information to screen - void print_conv_header(); - void print_conv_footer(); - -//NOTE: In all functions, we pass by reference (&), so these functions work on the original copy (not a clone copy), -// modifying the input variables inside the functions will change them outside the function. - }; - -// @sect3{Implementation of the Solid class} -// @sect4{Public interface} -// We initialise the Solid class using data extracted from the parameter file. - template - Solid::Solid(const Parameters::AllParameters ¶meters) - : - mpi_communicator(MPI_COMM_WORLD), - n_mpi_processes (Utilities::MPI::n_mpi_processes(mpi_communicator)), - this_mpi_process (Utilities::MPI::this_mpi_process(mpi_communicator)), - pcout(std::cout, this_mpi_process == 0), - parameters(parameters), - triangulation(mpi_communicator,Triangulation::maximum_smoothing), - time(parameters.end_time, parameters.delta_t), - timerconsole( mpi_communicator, - pcout, - TimerOutput::summary, - TimerOutput::wall_times), - timerfile( mpi_communicator, - outfile, - TimerOutput::summary, - TimerOutput::wall_times), - degree_displ(parameters.poly_degree_displ), - degree_pore(parameters.poly_degree_pore), - fe( FE_Q(parameters.poly_degree_displ), dim, - FE_Q(parameters.poly_degree_pore), 1 ), - dof_handler_ref(triangulation), - dofs_per_cell (fe.dofs_per_cell), - u_fe(first_u_component), - p_fluid_fe(p_fluid_component), - x_displacement(first_u_component), - y_displacement(first_u_component+1), - z_displacement(first_u_component+2), - pressure(p_fluid_component), - dofs_per_block(n_blocks), - qf_cell(parameters.quad_order), - qf_face(parameters.quad_order), - n_q_points (qf_cell.size()), - n_q_points_f (qf_face.size()) - { - Assert(dim==3, ExcMessage("This problem only works in 3 space dimensions.")); - determine_component_extractors(); - } - - //The class destructor simply clears the data held by the DOFHandler - template - Solid::~Solid() - { - dof_handler_ref.clear(); - } - -//Runs the 3D solid problem - template - void Solid::run() - { - //The current solution increment is defined as a block vector to reflect the structure - //of the PDE system, with multiple solution components - TrilinosWrappers::MPI::BlockVector solution_delta; - - //Open file - if (this_mpi_process == 0) - { - outfile.open("console-output.sol"); - print_console_file_header(outfile); - } - - //Generate mesh - make_grid(); - - //Assign DOFs and create the stiffness and right-hand-side force vector - system_setup(solution_delta); - - //Define points for post-processing - std::vector > tracked_vertices (2); - define_tracked_vertices(tracked_vertices); - std::vector> reaction_force; - - if (this_mpi_process == 0) - { - pointfile.open("data-for-gnuplot.sol"); - print_plot_file_header(tracked_vertices, pointfile); - } - - //Print results to output file - if (parameters.outfiles_requested == "true") - { - output_results_to_vtu(time.get_timestep(), - time.get_current(), - solution_n ); - } - - output_results_to_plot(time.get_timestep(), - time.get_current(), - solution_n, - tracked_vertices, - pointfile); - - //Increment time step (=load step) - //NOTE: In solving the quasi-static problem, the time becomes a loading parameter, - //i.e. we increase the loading linearly with time, making the two concepts interchangeable. - time.increment_time(); - - //Print information on screen - pcout << "\nSolver:"; - pcout << "\n CST = make constraints"; - pcout << "\n ASM_SYS = assemble system"; - pcout << "\n SLV = linear solver \n"; - - //Print information on file - outfile << "\nSolver:"; - outfile << "\n CST = make constraints"; - outfile << "\n ASM_SYS = assemble system"; - outfile << "\n SLV = linear solver \n"; - - while ( (time.get_end() - time.get_current()) > -1.0*parameters.tol_u ) - { - //Initialize the current solution increment to zero - solution_delta = 0.0; - - //Solve the non-linear system using a Newton-Rapshon scheme - solve_nonlinear_timestep(solution_delta); - - //Add the computed solution increment to total solution - solution_n += solution_delta; - - //Store the converged values of the internal variables - update_end_timestep(); - - //Output results - if (( (time.get_timestep()%parameters.timestep_output) == 0 ) - && (parameters.outfiles_requested == "true") ) - { - output_results_to_vtu(time.get_timestep(), - time.get_current(), - solution_n ); - } - - output_results_to_plot(time.get_timestep(), - time.get_current(), - solution_n, - tracked_vertices, - pointfile); - - //Increment the time step (=load step) - time.increment_time(); - } - - //Print the footers and close files - if (this_mpi_process == 0) - { - print_plot_file_footer(pointfile); - pointfile.close (); - print_console_file_footer(outfile); - - //NOTE: ideally, we should close the outfile here [ >> outfile.close (); ] - //But if we do, then the timer output will not be printed. That is why we leave it open. - } - } - -// @sect4{Private interface} -// We define the structures needed for parallelization with Threading Building Blocks (TBB) -// Tangent matrix and right-hand side force vector assembly structures. -// PerTaskData_ASM stores local contributions - template - struct Solid::PerTaskData_ASM - { - FullMatrix cell_matrix; - Vector cell_rhs; - std::vector local_dof_indices; - - PerTaskData_ASM(const unsigned int dofs_per_cell) - : - cell_matrix(dofs_per_cell, dofs_per_cell), - cell_rhs(dofs_per_cell), - local_dof_indices(dofs_per_cell) - {} - - void reset() - { - cell_matrix = 0.0; - cell_rhs = 0.0; - } - }; - - // ScratchData_ASM stores larger objects used during the assembly - template - template - struct Solid::ScratchData_ASM - { - const TrilinosWrappers::MPI::BlockVector &solution_total; - - //Integration helper - FEValues fe_values_ref; - FEFaceValues fe_face_values_ref; - - // Quadrature point solution - std::vector local_dof_values; - std::vector > solution_grads_u_total; - std::vector solution_values_p_fluid_total; - std::vector > solution_grads_p_fluid_total; - std::vector > solution_grads_face_p_fluid_total; - - //shape function values - std::vector>> Nx; - std::vector> Nx_p_fluid; - //shape function gradients - std::vector>> grad_Nx; - std::vector>> symm_grad_Nx; - std::vector>> grad_Nx_p_fluid; - - ScratchData_ASM(const FiniteElement &fe_cell, - const QGauss &qf_cell, const UpdateFlags uf_cell, - const QGauss & qf_face, const UpdateFlags uf_face, - const TrilinosWrappers::MPI::BlockVector &solution_total ) - : - solution_total (solution_total), - fe_values_ref(fe_cell, qf_cell, uf_cell), - fe_face_values_ref(fe_cell, qf_face, uf_face), - local_dof_values(fe_cell.dofs_per_cell), - solution_grads_u_total(qf_cell.size()), - solution_values_p_fluid_total(qf_cell.size()), - solution_grads_p_fluid_total(qf_cell.size()), - solution_grads_face_p_fluid_total(qf_face.size()), - Nx(qf_cell.size(), std::vector>(fe_cell.dofs_per_cell)), - Nx_p_fluid(qf_cell.size(), std::vector(fe_cell.dofs_per_cell)), - grad_Nx(qf_cell.size(), std::vector>(fe_cell.dofs_per_cell)), - symm_grad_Nx(qf_cell.size(), std::vector> (fe_cell.dofs_per_cell)), - grad_Nx_p_fluid(qf_cell.size(), std::vector>(fe_cell.dofs_per_cell)) - {} - - ScratchData_ASM(const ScratchData_ASM &rhs) - : - solution_total (rhs.solution_total), - fe_values_ref(rhs.fe_values_ref.get_fe(), - rhs.fe_values_ref.get_quadrature(), - rhs.fe_values_ref.get_update_flags()), - fe_face_values_ref(rhs.fe_face_values_ref.get_fe(), - rhs.fe_face_values_ref.get_quadrature(), - rhs.fe_face_values_ref.get_update_flags()), - local_dof_values(rhs.local_dof_values), - solution_grads_u_total(rhs.solution_grads_u_total), - solution_values_p_fluid_total(rhs.solution_values_p_fluid_total), - solution_grads_p_fluid_total(rhs.solution_grads_p_fluid_total), - solution_grads_face_p_fluid_total(rhs.solution_grads_face_p_fluid_total), - Nx(rhs.Nx), - Nx_p_fluid(rhs.Nx_p_fluid), - grad_Nx(rhs.grad_Nx), - symm_grad_Nx(rhs.symm_grad_Nx), - grad_Nx_p_fluid(rhs.grad_Nx_p_fluid) - {} - - void reset() - { - const unsigned int n_q_points = Nx_p_fluid.size(); - const unsigned int n_dofs_per_cell = Nx_p_fluid[0].size(); - - Assert(local_dof_values.size() == n_dofs_per_cell, ExcInternalError()); - - for (unsigned int k = 0; k < n_dofs_per_cell; ++k) - { - local_dof_values[k] = 0.0; - } - - Assert(solution_grads_u_total.size() == n_q_points, ExcInternalError()); - Assert(solution_values_p_fluid_total.size() == n_q_points, ExcInternalError()); - Assert(solution_grads_p_fluid_total.size() == n_q_points, ExcInternalError()); - - Assert(Nx.size() == n_q_points, ExcInternalError()); - Assert(grad_Nx.size() == n_q_points, ExcInternalError()); - Assert(symm_grad_Nx.size() == n_q_points, ExcInternalError()); - - for (unsigned int q_point = 0; q_point < n_q_points; ++q_point) - { - Assert( Nx[q_point].size() == n_dofs_per_cell, ExcInternalError()); - Assert( grad_Nx[q_point].size() == n_dofs_per_cell, ExcInternalError()); - Assert( symm_grad_Nx[q_point].size() == n_dofs_per_cell, ExcInternalError()); - - solution_grads_u_total[q_point] = 0.0; - solution_values_p_fluid_total[q_point] = 0.0; - solution_grads_p_fluid_total[q_point] = 0.0; - - for (unsigned int k = 0; k < n_dofs_per_cell; ++k) - { - Nx[q_point][k] = 0.0; - Nx_p_fluid[q_point][k] = 0.0; - grad_Nx[q_point][k] = 0.0; - symm_grad_Nx[q_point][k] = 0.0; - grad_Nx_p_fluid[q_point][k] = 0.0; - } - } - - const unsigned int n_f_q_points = solution_grads_face_p_fluid_total.size(); - Assert(solution_grads_face_p_fluid_total.size() == n_f_q_points, ExcInternalError()); - - for (unsigned int f_q_point = 0; f_q_point < n_f_q_points; ++f_q_point) - solution_grads_face_p_fluid_total[f_q_point] = 0.0; - } - }; - - //Define the boundary conditions on the mesh - template - void Solid::make_constraints(const int &it_nr_IN) - { - pcout << " CST " << std::flush; - outfile << " CST " << std::flush; - - if (it_nr_IN > 1) return; - - const bool apply_dirichlet_bc = (it_nr_IN == 0); - - if (apply_dirichlet_bc) - { - constraints.clear(); - make_dirichlet_constraints(constraints); - } - else - { - for (unsigned int i=0; i - void Solid::system_setup(TrilinosWrappers::MPI::BlockVector &solution_delta_OUT) - { - timerconsole.enter_subsection("Setup system"); - timerfile.enter_subsection("Setup system"); - - //Determine number of components per block - std::vector block_component(n_components, u_block); - block_component[p_fluid_component] = p_fluid_block; - - // The DOF handler is initialised and we renumber the grid in an efficient manner. - dof_handler_ref.distribute_dofs(fe); - DoFRenumbering::Cuthill_McKee(dof_handler_ref); - DoFRenumbering::component_wise(dof_handler_ref, block_component); - - // Count the number of DoFs in each block - dofs_per_block = DoFTools::count_dofs_per_fe_block(dof_handler_ref, block_component); - - // Setup the sparsity pattern and tangent matrix - all_locally_owned_dofs = DoFTools::locally_owned_dofs_per_subdomain (dof_handler_ref); - std::vector all_locally_relevant_dofs - = DoFTools::locally_relevant_dofs_per_subdomain (dof_handler_ref); - - locally_owned_dofs.clear(); - locally_owned_partitioning.clear(); - Assert(all_locally_owned_dofs.size() > this_mpi_process, ExcInternalError()); - locally_owned_dofs = all_locally_owned_dofs[this_mpi_process]; - - locally_relevant_dofs.clear(); - locally_relevant_partitioning.clear(); - Assert(all_locally_relevant_dofs.size() > this_mpi_process, ExcInternalError()); - locally_relevant_dofs = all_locally_relevant_dofs[this_mpi_process]; - - locally_owned_partitioning.reserve(n_blocks); - locally_relevant_partitioning.reserve(n_blocks); - - for (unsigned int b=0; b coupling(n_components, n_components); - for (unsigned int ii = 0; ii < n_components; ++ii) - for (unsigned int jj = 0; jj < n_components; ++jj) - - //Identify "zero" matrix components of FE-system (The two components do not couple) - if (((ii == p_fluid_component) && (jj < p_fluid_component)) - || ((ii < p_fluid_component) && (jj == p_fluid_component)) ) - coupling[ii][jj] = DoFTools::none; - - //The rest of components always couple - else - coupling[ii][jj] = DoFTools::always; - - TrilinosWrappers::BlockSparsityPattern bsp (locally_owned_partitioning, - mpi_communicator); - - DoFTools::make_sparsity_pattern (dof_handler_ref, bsp, constraints, - false, this_mpi_process); - bsp.compress(); - - //Reinitialize the (sparse) tangent matrix with the given sparsity pattern. - tangent_matrix.reinit (bsp); - - //Initialize the right hand side and solution vectors with number of DoFs - system_rhs.reinit(locally_owned_partitioning, mpi_communicator); - solution_n.reinit(locally_owned_partitioning, mpi_communicator); - solution_delta_OUT.reinit(locally_owned_partitioning, mpi_communicator); - - // Non-block system - TrilinosWrappers::SparsityPattern sp (locally_owned_dofs, - mpi_communicator); - DoFTools::make_sparsity_pattern (dof_handler_ref, sp, constraints, - false, this_mpi_process); - sp.compress(); - tangent_matrix_nb.reinit (sp); - system_rhs_nb.reinit(locally_owned_dofs, mpi_communicator); - - //Set up the quadrature point history - setup_qph(); - - timerconsole.leave_subsection(); - timerfile.leave_subsection(); - } - - //Component extractors: used to extract sub-blocks from the global matrix - //Description of which local element DOFs are attached to which block component - template - void Solid::determine_component_extractors() - { - element_indices_u.clear(); - element_indices_p_fluid.clear(); - - for (unsigned int k = 0; k < fe.dofs_per_cell; ++k) - { - const unsigned int k_group = fe.system_to_base_index(k).first.first; - if (k_group == u_block) - element_indices_u.push_back(k); - else if (k_group == p_fluid_block) - element_indices_p_fluid.push_back(k); - else - { - Assert(k_group <= p_fluid_block, ExcInternalError()); - } - } - } - - //Set-up quadrature point history (QPH) data objects - template - void Solid::setup_qph() - { - pcout << "\nSetting up quadrature point data..." << std::endl; - outfile << "\nSetting up quadrature point data..." << std::endl; - - //Create QPH data objects. - quadrature_point_history.initialize(triangulation.begin_active(), - triangulation.end(), n_q_points); - - //Setup the initial quadrature point data using the info stored in parameters - FilteredIterator::active_cell_iterator> - cell (IteratorFilters::LocallyOwnedCell(), - dof_handler_ref.begin_active()), - endc (IteratorFilters::LocallyOwnedCell(), - dof_handler_ref.end()); - for (; cell!=endc; ++cell) - { - Assert(cell->is_locally_owned(), ExcInternalError()); - Assert(cell->subdomain_id() == this_mpi_process, ExcInternalError()); - - const std::vector > > - lqph = quadrature_point_history.get_data(cell); - Assert(lqph.size() == n_q_points, ExcInternalError()); - - for (unsigned int q_point = 0; q_point < n_q_points; ++q_point) - lqph[q_point]->setup_lqp(parameters, time); - } - } - - //Solve the non-linear system using a Newton-Raphson scheme - template - void Solid::solve_nonlinear_timestep(TrilinosWrappers::MPI::BlockVector &solution_delta_OUT) - { - //Print the load step - pcout << std::endl - << "\nTimestep " - << time.get_timestep() - << " @ " - << time.get_current() - << "s" - << std::endl; - outfile << std::endl - << "\nTimestep " - << time.get_timestep() - << " @ " - << time.get_current() - << "s" - << std::endl; - - //Declare newton_update vector (solution of a Newton iteration), - //which must have as many positions as global DoFs. - TrilinosWrappers::MPI::BlockVector newton_update - (locally_owned_partitioning, mpi_communicator); - - //Reset the error storage objects - error_residual.reset(); - error_residual_0.reset(); - error_residual_norm.reset(); - error_update.reset(); - error_update_0.reset(); - error_update_norm.reset(); - - print_conv_header(); - - //Declare and initialize iterator for the Newton-Raphson algorithm steps - unsigned int newton_iteration = 0; - - //Iterate until error is below tolerance or max number iterations are reached - while(newton_iteration < parameters.max_iterations_NR) - { - pcout << " " << std::setw(2) << newton_iteration << " " << std::flush; - outfile << " " << std::setw(2) << newton_iteration << " " << std::flush; - - //Initialize global stiffness matrix and global force vector to zero - tangent_matrix = 0.0; - system_rhs = 0.0; - - tangent_matrix_nb = 0.0; - system_rhs_nb = 0.0; - - //Apply boundary conditions - make_constraints(newton_iteration); - assemble_system(solution_delta_OUT); - - //Compute the rhs residual (error between external and internal forces in FE system) - get_error_residual(error_residual); - - //error_residual in first iteration is stored to normalize posterior error measures - if (newton_iteration == 0) - error_residual_0 = error_residual; - - // Determine the normalised residual error - error_residual_norm = error_residual; - error_residual_norm.normalise(error_residual_0); - - //If both errors are below the tolerances, exit the loop. - // We need to check the residual vector directly for convergence - // in the load steps where no external forces or displacements are imposed. - if ( ((newton_iteration > 0) - && (error_update_norm.u <= parameters.tol_u) - && (error_update_norm.p_fluid <= parameters.tol_p_fluid) - && (error_residual_norm.u <= parameters.tol_f) - && (error_residual_norm.p_fluid <= parameters.tol_f)) - || ( (newton_iteration > 0) - && system_rhs.l2_norm() <= parameters.tol_f) ) - { - pcout << "\n ***** CONVERGED! ***** " - << system_rhs.l2_norm() << " " - << " " << error_residual_norm.norm - << " " << error_residual_norm.u - << " " << error_residual_norm.p_fluid - << " " << error_update_norm.norm - << " " << error_update_norm.u - << " " << error_update_norm.p_fluid - << " " << std::endl; - outfile << "\n ***** CONVERGED! ***** " - << system_rhs.l2_norm() << " " - << " " << error_residual_norm.norm - << " " << error_residual_norm.u - << " " << error_residual_norm.p_fluid - << " " << error_update_norm.norm - << " " << error_update_norm.u - << " " << error_update_norm.p_fluid - << " " << std::endl; - print_conv_footer(); - - break; - } - - //Solve the linearized system - solve_linear_system(newton_update); - constraints.distribute(newton_update); - - //Compute the displacement error - get_error_update(newton_update, error_update); - - //error_update in first iteration is stored to normalize posterior error measures - if (newton_iteration == 0) - error_update_0 = error_update; - - // Determine the normalised Newton update error - error_update_norm = error_update; - error_update_norm.normalise(error_update_0); - - // Determine the normalised residual error - error_residual_norm = error_residual; - error_residual_norm.normalise(error_residual_0); - - //Print error values - pcout << " | " << std::fixed << std::setprecision(3) - << std::setw(7) << std::scientific - << system_rhs.l2_norm() - << " " << error_residual_norm.norm - << " " << error_residual_norm.u - << " " << error_residual_norm.p_fluid - << " " << error_update_norm.norm - << " " << error_update_norm.u - << " " << error_update_norm.p_fluid - << " " << std::endl; - - outfile << " | " << std::fixed << std::setprecision(3) - << std::setw(7) << std::scientific - << system_rhs.l2_norm() - << " " << error_residual_norm.norm - << " " << error_residual_norm.u - << " " << error_residual_norm.p_fluid - << " " << error_update_norm.norm - << " " << error_update_norm.u - << " " << error_update_norm.p_fluid - << " " << std::endl; - - // Update - solution_delta_OUT += newton_update; - newton_update = 0.0; - newton_iteration++; - } - - //If maximum allowed number of iterations for Newton algorithm are reached, print non-convergence message and abort program - AssertThrow (newton_iteration < parameters.max_iterations_NR, ExcMessage("No convergence in nonlinear solver!")); - } - - //Prints the header for convergence info on console - template - void Solid::print_conv_header() - { - static const unsigned int l_width = 120; - - for (unsigned int i = 0; i < l_width; ++i) - { - pcout << "_"; - outfile << "_"; - } - - pcout << std::endl; - outfile << std::endl; - - pcout << "\n SOLVER STEP | SYS_RES " - << "RES_NORM RES_U RES_P " - << "NU_NORM NU_U NU_P " << std::endl; - outfile << "\n SOLVER STEP | SYS_RES " - << "RES_NORM RES_U RES_P " - << "NU_NORM NU_U NU_P " << std::endl; - - for (unsigned int i = 0; i < l_width; ++i) - { - pcout << "_"; - outfile << "_"; - } - pcout << std::endl << std::endl; - outfile << std::endl << std::endl; - } - - //Prints the footer for convergence info on console - template - void Solid::print_conv_footer() - { - static const unsigned int l_width = 120; - - for (unsigned int i = 0; i < l_width; ++i) - { - pcout << "_"; - outfile << "_"; - } - pcout << std::endl << std::endl; - outfile << std::endl << std::endl; - - pcout << "Relative errors:" << std::endl - << "Displacement: " - << error_update.u / error_update_0.u << std::endl - << "Force (displ): " - << error_residual.u / error_residual_0.u << std::endl - << "Pore pressure: " - << error_update.p_fluid / error_update_0.p_fluid << std::endl - << "Force (pore): " - << error_residual.p_fluid / error_residual_0.p_fluid << std::endl; - outfile << "Relative errors:" << std::endl - << "Displacement: " - << error_update.u / error_update_0.u << std::endl - << "Force (displ): " - << error_residual.u / error_residual_0.u << std::endl - << "Pore pressure: " - << error_update.p_fluid / error_update_0.p_fluid << std::endl - << "Force (pore): " - << error_residual.p_fluid / error_residual_0.p_fluid << std::endl; - } - - //Determine the true residual error for the problem - template - void Solid::get_error_residual(Errors &error_residual_OUT) - { - TrilinosWrappers::MPI::BlockVector error_res(system_rhs); - constraints.set_zero(error_res); - - error_residual_OUT.norm = error_res.l2_norm(); - error_residual_OUT.u = error_res.block(u_block).l2_norm(); - error_residual_OUT.p_fluid = error_res.block(p_fluid_block).l2_norm(); - } - - //Determine the true Newton update error for the problem - template - void Solid::get_error_update - (const TrilinosWrappers::MPI::BlockVector &newton_update_IN, - Errors &error_update_OUT) - { - TrilinosWrappers::MPI::BlockVector error_ud(newton_update_IN); - constraints.set_zero(error_ud); - - error_update_OUT.norm = error_ud.l2_norm(); - error_update_OUT.u = error_ud.block(u_block).l2_norm(); - error_update_OUT.p_fluid = error_ud.block(p_fluid_block).l2_norm(); - } - - //Compute the total solution, which is valid at any Newton step. This is required as, to reduce - //computational error, the total solution is only updated at the end of the timestep. - template - TrilinosWrappers::MPI::BlockVector - Solid::get_total_solution(const TrilinosWrappers::MPI::BlockVector &solution_delta_IN) const - { - // Cell interpolation -> Ghosted vector - TrilinosWrappers::MPI::BlockVector - solution_total (locally_owned_partitioning, - locally_relevant_partitioning, - mpi_communicator, - /*vector_writable = */ false); - TrilinosWrappers::MPI::BlockVector tmp (solution_total); - solution_total = solution_n; - tmp = solution_delta_IN; - solution_total += tmp; - return solution_total; - } - - //Compute elemental stiffness tensor and right-hand side force vector, and assemble into global ones - template - void Solid::assemble_system( const TrilinosWrappers::MPI::BlockVector &solution_delta ) - { - timerconsole.enter_subsection("Assemble system"); - timerfile.enter_subsection("Assemble system"); - pcout << " ASM_SYS " << std::flush; - outfile << " ASM_SYS " << std::flush; - - const TrilinosWrappers::MPI::BlockVector solution_total(get_total_solution(solution_delta)); - - //Info given to FEValues and FEFaceValues constructors, to indicate which data will be needed at each element. - const UpdateFlags uf_cell(update_values | - update_gradients | - update_JxW_values); - const UpdateFlags uf_face(update_values | - update_gradients | - update_normal_vectors | - update_quadrature_points | - update_JxW_values ); - - //Setup a copy of the data structures required for the process and pass them, along with the - //memory addresses of the assembly functions to the WorkStream object for processing - PerTaskData_ASM per_task_data(dofs_per_cell); - ScratchData_ASM scratch_data(fe, qf_cell, uf_cell, - qf_face, uf_face, - solution_total); - - FilteredIterator::active_cell_iterator> - cell (IteratorFilters::LocallyOwnedCell(), - dof_handler_ref.begin_active()), - endc (IteratorFilters::LocallyOwnedCell(), - dof_handler_ref.end()); - for (; cell != endc; ++cell) - { - Assert(cell->is_locally_owned(), ExcInternalError()); - Assert(cell->subdomain_id() == this_mpi_process, ExcInternalError()); - - assemble_system_one_cell(cell, scratch_data, per_task_data); - copy_local_to_global_system(per_task_data); - } - tangent_matrix.compress(VectorOperation::add); - system_rhs.compress(VectorOperation::add); - - tangent_matrix_nb.compress(VectorOperation::add); - system_rhs_nb.compress(VectorOperation::add); - - timerconsole.leave_subsection(); - timerfile.leave_subsection(); - } - - //Add the local elemental contribution to the global stiffness tensor - // We do it twice, for the block and the non-block systems - template - void Solid::copy_local_to_global_system (const PerTaskData_ASM &data) - { - constraints.distribute_local_to_global(data.cell_matrix, - data.cell_rhs, - data.local_dof_indices, - tangent_matrix, - system_rhs); - - constraints.distribute_local_to_global(data.cell_matrix, - data.cell_rhs, - data.local_dof_indices, - tangent_matrix_nb, - system_rhs_nb); - } - - //Compute stiffness matrix and corresponding rhs for one element - template - void Solid::assemble_system_one_cell - (const typename DoFHandler::active_cell_iterator &cell, - ScratchData_ASM &scratch, - PerTaskData_ASM &data) const - { - Assert(cell->is_locally_owned(), ExcInternalError()); - - data.reset(); - scratch.reset(); - scratch.fe_values_ref.reinit(cell); - cell->get_dof_indices(data.local_dof_indices); - - // Setup automatic differentiation - for (unsigned int k = 0; k < dofs_per_cell; ++k) - { - // Initialise the dofs for the cell using the current solution. - scratch.local_dof_values[k] = scratch.solution_total[data.local_dof_indices[k]]; - // Mark this cell DoF as an independent variable - scratch.local_dof_values[k].diff(k, dofs_per_cell); - } - - // Update the quadrature point solution - // Compute the values and gradients of the solution in terms of the AD variables - for (unsigned int q = 0; q < n_q_points; ++q) - { - for (unsigned int k = 0; k < dofs_per_cell; ++k) - { - const unsigned int k_group = fe.system_to_base_index(k).first.first; - if (k_group == u_block) - { - const Tensor<2, dim> Grad_Nx_u = - scratch.fe_values_ref[u_fe].gradient(k, q); - for (unsigned int dd = 0; dd < dim; ++dd) - { - for (unsigned int ee = 0; ee < dim; ++ee) - { - scratch.solution_grads_u_total[q][dd][ee] - += scratch.local_dof_values[k] * Grad_Nx_u[dd][ee]; - } - } - } - else if (k_group == p_fluid_block) - { - const double Nx_p = scratch.fe_values_ref[p_fluid_fe].value(k, q); - const Tensor<1, dim> Grad_Nx_p = - scratch.fe_values_ref[p_fluid_fe].gradient(k, q); - - scratch.solution_values_p_fluid_total[q] - += scratch.local_dof_values[k] * Nx_p; - for (unsigned int dd = 0; dd < dim; ++dd) - { - scratch.solution_grads_p_fluid_total[q][dd] - += scratch.local_dof_values[k] * Grad_Nx_p[dd]; - } - } - else - Assert(k_group <= p_fluid_block, ExcInternalError()); - } - } - - //Set up pointer "lgph" to the PointHistory object of this element - const std::vector > > - lqph = quadrature_point_history.get_data(cell); - Assert(lqph.size() == n_q_points, ExcInternalError()); - - - //Precalculate the element shape function values and gradients - for (unsigned int q_point = 0; q_point < n_q_points; ++q_point) - { - Tensor<2, dim, ADNumberType> F_AD = scratch.solution_grads_u_total[q_point]; - F_AD += Tensor<2, dim, double>(Physics::Elasticity::StandardTensors::I); - Assert(determinant(F_AD) > 0, ExcMessage("Invalid deformation map")); - const Tensor<2, dim, ADNumberType> F_inv_AD = invert(F_AD); - - for (unsigned int i = 0; i < dofs_per_cell; ++i) - { - const unsigned int i_group = fe.system_to_base_index(i).first.first; - - if (i_group == u_block) - { - scratch.Nx[q_point][i] = - scratch.fe_values_ref[u_fe].value(i, q_point); - scratch.grad_Nx[q_point][i] = - scratch.fe_values_ref[u_fe].gradient(i, q_point)*F_inv_AD; - scratch.symm_grad_Nx[q_point][i] = - symmetrize(scratch.grad_Nx[q_point][i]); - } - else if (i_group == p_fluid_block) - { - scratch.Nx_p_fluid[q_point][i] = - scratch.fe_values_ref[p_fluid_fe].value(i, q_point); - scratch.grad_Nx_p_fluid[q_point][i] = - scratch.fe_values_ref[p_fluid_fe].gradient(i, q_point)*F_inv_AD; - } - else - Assert(i_group <= p_fluid_block, ExcInternalError()); - } - } - - //Assemble the stiffness matrix and rhs vector - std::vector residual_ad (dofs_per_cell, ADNumberType(0.0)); - for (unsigned int q_point = 0; q_point < n_q_points; ++q_point) - { - Tensor<2, dim, ADNumberType> F_AD = scratch.solution_grads_u_total[q_point]; - F_AD += Tensor<2, dim,double>(Physics::Elasticity::StandardTensors::I); - const ADNumberType det_F_AD = determinant(F_AD); - - Assert(det_F_AD > 0, ExcInternalError()); - const Tensor<2, dim, ADNumberType> F_inv_AD = invert(F_AD); //inverse of def. gradient tensor - - const ADNumberType p_fluid = scratch.solution_values_p_fluid_total[q_point]; - - { - PointHistory *lqph_q_point_nc = - const_cast*>(lqph[q_point].get()); - lqph_q_point_nc->update_internal_equilibrium(F_AD); - } - - //Get some info from constitutive model of solid - static const SymmetricTensor< 2, dim, double> - I (Physics::Elasticity::StandardTensors::I); - const SymmetricTensor<2, dim, ADNumberType> - tau_E = lqph[q_point]->get_tau_E(F_AD); - SymmetricTensor<2, dim, ADNumberType> tau_fluid_vol (I); - tau_fluid_vol *= -1.0 * p_fluid * det_F_AD; - - //Get some info from constitutive model of fluid - const ADNumberType det_F_aux = lqph[q_point]->get_converged_det_F(); - const double det_F_converged = Tensor<0,dim,double>(det_F_aux); //Needs to be double, not AD number - const Tensor<1, dim, ADNumberType> overall_body_force - = lqph[q_point]->get_overall_body_force(F_AD, parameters); - - // Define some aliases to make the assembly process easier to follow - const std::vector> &Nu = scratch.Nx[q_point]; - const std::vector> - &symm_grad_Nu = scratch.symm_grad_Nx[q_point]; - const std::vector &Np = scratch.Nx_p_fluid[q_point]; - const std::vector > &grad_Np - = scratch.grad_Nx_p_fluid[q_point]; - const Tensor<1, dim, ADNumberType> grad_p - = scratch.solution_grads_p_fluid_total[q_point]*F_inv_AD; - const double JxW = scratch.fe_values_ref.JxW(q_point); - - for (unsigned int i = 0; i < dofs_per_cell; ++i) - { - const unsigned int i_group = fe.system_to_base_index(i).first.first; - - if (i_group == u_block) - { - residual_ad[i] += symm_grad_Nu[i] * ( tau_E + tau_fluid_vol ) * JxW; - residual_ad[i] -= Nu[i] * overall_body_force * JxW; - } - else if (i_group == p_fluid_block) - { - const Tensor<1, dim, ADNumberType> seepage_vel_current - = lqph[q_point]->get_seepage_velocity_current(F_AD, grad_p); - residual_ad[i] += Np[i] * (det_F_AD - det_F_converged) * JxW; - residual_ad[i] -= time.get_delta_t() * grad_Np[i] - * seepage_vel_current * JxW; - } - else - Assert(i_group <= p_fluid_block, ExcInternalError()); - } - } - - // Assemble the Neumann contribution (external force contribution). - for (unsigned int face = 0; face < GeometryInfo::faces_per_cell; ++face) //Loop over faces in element - { - if (cell->face(face)->at_boundary() == true) - { - scratch.fe_face_values_ref.reinit(cell, face); - - for (unsigned int f_q_point = 0; f_q_point < n_q_points_f; ++f_q_point) - { - const Tensor<1, dim> &N - = scratch.fe_face_values_ref.normal_vector(f_q_point); - const Point &pt - = scratch.fe_face_values_ref.quadrature_point(f_q_point); - const Tensor<1, dim> traction - = get_neumann_traction(cell->face(face)->boundary_id(), pt, N); - const double flow - = get_prescribed_fluid_flow(cell->face(face)->boundary_id(), pt); - - if ( (traction.norm() < 1e-12) && (std::abs(flow) < 1e-12) ) continue; - - const double JxW_f = scratch.fe_face_values_ref.JxW(f_q_point); - - for (unsigned int i = 0; i < dofs_per_cell; ++i) - { - const unsigned int i_group = fe.system_to_base_index(i).first.first; - - if ((i_group == u_block) && (traction.norm() > 1e-12)) - { - const unsigned int component_i - = fe.system_to_component_index(i).first; - const double Nu_f - = scratch.fe_face_values_ref.shape_value(i, f_q_point); - residual_ad[i] -= (Nu_f * traction[component_i]) * JxW_f; - } - if ((i_group == p_fluid_block) && (std::abs(flow) > 1e-12)) - { - const double Nu_p - = scratch.fe_face_values_ref.shape_value(i, f_q_point); - residual_ad[i] -= (Nu_p * flow) * JxW_f; - } - } - } - } - } - - // Linearise the residual - for (unsigned int i = 0; i < dofs_per_cell; ++i) - { - const ADNumberType &R_i = residual_ad[i]; - - data.cell_rhs(i) -= R_i.val(); - for (unsigned int j=0; j - void Solid::update_end_timestep() - { - FilteredIterator::active_cell_iterator> - cell (IteratorFilters::LocallyOwnedCell(), - dof_handler_ref.begin_active()), - endc (IteratorFilters::LocallyOwnedCell(), - dof_handler_ref.end()); - for (; cell!=endc; ++cell) - { - Assert(cell->is_locally_owned(), ExcInternalError()); - Assert(cell->subdomain_id() == this_mpi_process, ExcInternalError()); - - const std::vector > > - lqph = quadrature_point_history.get_data(cell); - Assert(lqph.size() == n_q_points, ExcInternalError()); - for (unsigned int q_point = 0; q_point < n_q_points; ++q_point) - lqph[q_point]->update_end_timestep(); - } - } - - - //Solve the linearized equations - template - void Solid::solve_linear_system( TrilinosWrappers::MPI::BlockVector &newton_update_OUT) - { - - timerconsole.enter_subsection("Linear solver"); - timerfile.enter_subsection("Linear solver"); - pcout << " SLV " << std::flush; - outfile << " SLV " << std::flush; - - TrilinosWrappers::MPI::Vector newton_update_nb; - newton_update_nb.reinit(locally_owned_dofs, mpi_communicator); - - SolverControl solver_control (tangent_matrix_nb.m(), - 1.0e-6 * system_rhs_nb.l2_norm()); - TrilinosWrappers::SolverDirect solver (solver_control); - solver.solve(tangent_matrix_nb, newton_update_nb, system_rhs_nb); - - // Copy the non-block solution back to block system - for (unsigned int i=0; i - class GradientPostprocessor : public DataPostprocessorVector - { - public: - GradientPostprocessor (const unsigned int p_fluid_component) - : - DataPostprocessorVector ("grad_p", - update_gradients), - p_fluid_component (p_fluid_component) - {} - - virtual ~GradientPostprocessor(){} - - virtual void - evaluate_vector_field - (const DataPostprocessorInputs::Vector &input_data, - std::vector > &computed_quantities) const override - { - AssertDimension (input_data.solution_gradients.size(), - computed_quantities.size()); - for (unsigned int p=0; p void Solid::output_results_to_vtu - (const unsigned int timestep, - const double current_time, - TrilinosWrappers::MPI::BlockVector solution_IN) const - { - TrilinosWrappers::MPI::BlockVector solution_total(locally_owned_partitioning, - locally_relevant_partitioning, - mpi_communicator, - false); - solution_total = solution_IN; - Vector material_id; - material_id.reinit(triangulation.n_active_cells()); - std::vector partition_int(triangulation.n_active_cells()); - GradientPostprocessor gradient_postprocessor(p_fluid_component); - - //Declare local variables with number of stress components - //& assign value according to "dim" value - unsigned int num_comp_symm_tensor = 6; - - //Declare local vectors to store values - // OUTPUT AVERAGED ON ELEMENTS ------------------------------------------- - std::vector>cauchy_stresses_total_elements - (num_comp_symm_tensor, - Vector (triangulation.n_active_cells())); - std::vector>cauchy_stresses_E_elements - (num_comp_symm_tensor, - Vector (triangulation.n_active_cells())); - std::vector>stretches_elements - (dim, - Vector (triangulation.n_active_cells())); - std::vector>seepage_velocity_elements - (dim, - Vector (triangulation.n_active_cells())); - Vector porous_dissipation_elements - (triangulation.n_active_cells()); - Vector viscous_dissipation_elements - (triangulation.n_active_cells()); - Vector solid_vol_fraction_elements - (triangulation.n_active_cells()); - - // OUTPUT AVERAGED ON NODES ---------------------------------------------- - // We need to create a new FE space with a single dof per node to avoid - // duplication of the output on nodes for our problem with dim+1 dofs. - FE_Q fe_vertex(1); - DoFHandler vertex_handler_ref(triangulation); - vertex_handler_ref.distribute_dofs(fe_vertex); - AssertThrow(vertex_handler_ref.n_dofs() == triangulation.n_vertices(), - ExcDimensionMismatch(vertex_handler_ref.n_dofs(), - triangulation.n_vertices())); - - Vector counter_on_vertices_mpi - (vertex_handler_ref.n_dofs()); - Vector sum_counter_on_vertices - (vertex_handler_ref.n_dofs()); - - std::vector>cauchy_stresses_total_vertex_mpi - (num_comp_symm_tensor, - Vector(vertex_handler_ref.n_dofs())); - std::vector>sum_cauchy_stresses_total_vertex - (num_comp_symm_tensor, - Vector(vertex_handler_ref.n_dofs())); - std::vector>cauchy_stresses_E_vertex_mpi - (num_comp_symm_tensor, - Vector(vertex_handler_ref.n_dofs())); - std::vector>sum_cauchy_stresses_E_vertex - (num_comp_symm_tensor, - Vector(vertex_handler_ref.n_dofs())); - std::vector>stretches_vertex_mpi - (dim, - Vector(vertex_handler_ref.n_dofs())); - std::vector>sum_stretches_vertex - (dim, - Vector(vertex_handler_ref.n_dofs())); - Vector porous_dissipation_vertex_mpi(vertex_handler_ref.n_dofs()); - Vector sum_porous_dissipation_vertex(vertex_handler_ref.n_dofs()); - Vector viscous_dissipation_vertex_mpi(vertex_handler_ref.n_dofs()); - Vector sum_viscous_dissipation_vertex(vertex_handler_ref.n_dofs()); - Vector solid_vol_fraction_vertex_mpi(vertex_handler_ref.n_dofs()); - Vector sum_solid_vol_fraction_vertex(vertex_handler_ref.n_dofs()); - - // We need to create a new FE space with a dim dof per node to - // be able to ouput data on nodes in vector form - FESystem fe_vertex_vec(FE_Q(1),dim); - DoFHandler vertex_vec_handler_ref(triangulation); - vertex_vec_handler_ref.distribute_dofs(fe_vertex_vec); - AssertThrow(vertex_vec_handler_ref.n_dofs() == (dim*triangulation.n_vertices()), - ExcDimensionMismatch(vertex_vec_handler_ref.n_dofs(), - (dim*triangulation.n_vertices()))); - - Vector seepage_velocity_vertex_vec_mpi(vertex_vec_handler_ref.n_dofs()); - Vector sum_seepage_velocity_vertex_vec(vertex_vec_handler_ref.n_dofs()); - Vector counter_on_vertices_vec_mpi(vertex_vec_handler_ref.n_dofs()); - Vector sum_counter_on_vertices_vec(vertex_vec_handler_ref.n_dofs()); - // ----------------------------------------------------------------------- - - //Declare and initialize local unit vectors (to construct tensor basis) - std::vector> basis_vectors (dim, Tensor<1,dim>() ); - for (unsigned int i=0; i material(parameters,time); - else if (parameters.mat_type == "Ogden") - Ogden material(parameters,time); - else if (parameters.mat_type == "visco-Ogden") - visco_Ogden material(parameters,time); - else - Assert (false, ExcMessage("Material type not implemented")); - - //Define a local instance of FEValues to compute updated values required - //to calculate stresses - const UpdateFlags uf_cell(update_values | update_gradients | - update_JxW_values); - FEValues fe_values_ref (fe, qf_cell, uf_cell); - - //Iterate through elements (cells) and Gauss Points - FilteredIterator::active_cell_iterator> - cell(IteratorFilters::LocallyOwnedCell(), - dof_handler_ref.begin_active()), - endc(IteratorFilters::LocallyOwnedCell(), - dof_handler_ref.end()), - cell_v(IteratorFilters::LocallyOwnedCell(), - vertex_handler_ref.begin_active()), - cell_v_vec(IteratorFilters::LocallyOwnedCell(), - vertex_vec_handler_ref.begin_active()); - //start cell loop - for (; cell!=endc; ++cell, ++cell_v, ++cell_v_vec) - { - Assert(cell->is_locally_owned(), ExcInternalError()); - Assert(cell->subdomain_id() == this_mpi_process, ExcInternalError()); - - material_id(cell->active_cell_index())= - static_cast(cell->material_id()); - - fe_values_ref.reinit(cell); - - std::vector> solution_grads_u(n_q_points); - fe_values_ref[u_fe].get_function_gradients(solution_total, - solution_grads_u); - - std::vector solution_values_p_fluid_total(n_q_points); - fe_values_ref[p_fluid_fe].get_function_values(solution_total, - solution_values_p_fluid_total); - - std::vector> solution_grads_p_fluid_AD (n_q_points); - fe_values_ref[p_fluid_fe].get_function_gradients(solution_total, - solution_grads_p_fluid_AD); - - //start gauss point loop - for (unsigned int q_point=0; q_point - F_AD = Physics::Elasticity::Kinematics::F(solution_grads_u[q_point]); - ADNumberType det_F_AD = determinant(F_AD); - const double det_F = Tensor<0,dim,double>(det_F_AD); - - const std::vector>> - lqph = quadrature_point_history.get_data(cell); - Assert(lqph.size() == n_q_points, ExcInternalError()); - - const double p_fluid = solution_values_p_fluid_total[q_point]; - - //Cauchy stress - static const SymmetricTensor<2,dim,double> - I (Physics::Elasticity::StandardTensors::I); - SymmetricTensor<2,dim> sigma_E; - const SymmetricTensor<2,dim,ADNumberType> sigma_E_AD = - lqph[q_point]->get_Cauchy_E(F_AD); - - for (unsigned int i=0; i(sigma_E_AD[i][j]); - - SymmetricTensor<2,dim> sigma_fluid_vol (I); - sigma_fluid_vol *= -p_fluid; - const SymmetricTensor<2,dim> sigma = sigma_E + sigma_fluid_vol; - - //Volumes - const double solid_vol_fraction = (parameters.solid_vol_frac)/det_F; - - //Green-Lagrange strain - const Tensor<2,dim> E_strain = 0.5*(transpose(F_AD)*F_AD - I); - - //Seepage velocity - const Tensor<2,dim,ADNumberType> F_inv = invert(F_AD); - const Tensor<1,dim,ADNumberType> grad_p_fluid_AD = - solution_grads_p_fluid_AD[q_point]*F_inv; - const Tensor<1,dim,ADNumberType> seepage_vel_AD = - lqph[q_point]->get_seepage_velocity_current(F_AD, grad_p_fluid_AD); - - //Dissipations - const double porous_dissipation = - lqph[q_point]->get_porous_dissipation(F_AD, grad_p_fluid_AD); - const double viscous_dissipation = - lqph[q_point]->get_viscous_dissipation(); - - // OUTPUT AVERAGED ON ELEMENTS ------------------------------------------- - // Both average on elements and on nodes is NOT weighted with the - // integration point volume, i.e., we assume equal contribution of each - // integration point to the average. Ideally, it should be weighted, - // but I haven't invested time in getting it to work properly. - if (parameters.outtype == "elements") - { - for (unsigned int j=0; jactive_cell_index()) - += ((sigma*basis_vectors[j])*basis_vectors[j])/n_q_points; - cauchy_stresses_E_elements[j](cell->active_cell_index()) - += ((sigma_E*basis_vectors[j])*basis_vectors[j])/n_q_points; - stretches_elements[j](cell->active_cell_index()) - += std::sqrt(1.0+2.0*Tensor<0,dim,double>(E_strain[j][j])) - /n_q_points; - seepage_velocity_elements[j](cell->active_cell_index()) - += Tensor<0,dim,double>(seepage_vel_AD[j])/n_q_points; - } - - porous_dissipation_elements(cell->active_cell_index()) - += porous_dissipation/n_q_points; - viscous_dissipation_elements(cell->active_cell_index()) - += viscous_dissipation/n_q_points; - solid_vol_fraction_elements(cell->active_cell_index()) - += solid_vol_fraction/n_q_points; - - cauchy_stresses_total_elements[3](cell->active_cell_index()) - += ((sigma*basis_vectors[0])*basis_vectors[1])/n_q_points; //sig_xy - cauchy_stresses_total_elements[4](cell->active_cell_index()) - += ((sigma*basis_vectors[0])*basis_vectors[2])/n_q_points;//sig_xz - cauchy_stresses_total_elements[5](cell->active_cell_index()) - += ((sigma*basis_vectors[1])*basis_vectors[2])/n_q_points;//sig_yz - - cauchy_stresses_E_elements[3](cell->active_cell_index()) - += ((sigma_E*basis_vectors[0])* basis_vectors[1])/n_q_points; //sig_xy - cauchy_stresses_E_elements[4](cell->active_cell_index()) - += ((sigma_E*basis_vectors[0])* basis_vectors[2])/n_q_points;//sig_xz - cauchy_stresses_E_elements[5](cell->active_cell_index()) - += ((sigma_E*basis_vectors[1])* basis_vectors[2])/n_q_points;//sig_yz - - } - // OUTPUT AVERAGED ON NODES ------------------------------------------- - else if (parameters.outtype == "nodes") - { - for (unsigned int v=0; v<(GeometryInfo::vertices_per_cell); ++v) - { - types::global_dof_index local_vertex_indices = - cell_v->vertex_dof_index(v, 0); - counter_on_vertices_mpi(local_vertex_indices) += 1; - for (unsigned int k=0; k(E_strain[k][k])); - - types::global_dof_index local_vertex_vec_indices = - cell_v_vec->vertex_dof_index(v, k); - counter_on_vertices_vec_mpi(local_vertex_vec_indices) += 1; - seepage_velocity_vertex_vec_mpi(local_vertex_vec_indices) - += Tensor<0,dim,double>(seepage_vel_AD[k]); - } - - porous_dissipation_vertex_mpi(local_vertex_indices) - += porous_dissipation; - viscous_dissipation_vertex_mpi(local_vertex_indices) - += viscous_dissipation; - solid_vol_fraction_vertex_mpi(local_vertex_indices) - += solid_vol_fraction; - - cauchy_stresses_total_vertex_mpi[3](local_vertex_indices) - += (sigma*basis_vectors[0])*basis_vectors[1]; //sig_xy - cauchy_stresses_total_vertex_mpi[4](local_vertex_indices) - += (sigma*basis_vectors[0])*basis_vectors[2];//sig_xz - cauchy_stresses_total_vertex_mpi[5](local_vertex_indices) - += (sigma*basis_vectors[1])*basis_vectors[2]; //sig_yz - - cauchy_stresses_E_vertex_mpi[3](local_vertex_indices) - += (sigma_E*basis_vectors[0])*basis_vectors[1]; //sig_xy - cauchy_stresses_E_vertex_mpi[4](local_vertex_indices) - += (sigma_E*basis_vectors[0])*basis_vectors[2];//sig_xz - cauchy_stresses_E_vertex_mpi[5](local_vertex_indices) - += (sigma_E*basis_vectors[1])*basis_vectors[2]; //sig_yz - } - } - //--------------------------------------------------------------- - } //end gauss point loop - }//end cell loop - - // Different nodes might have different amount of contributions, e.g., - // corner nodes have less integration points contributing to the averaged. - // This is why we need a counter and divide at the end, outside the cell loop. - if (parameters.outtype == "nodes") - { - for (unsigned int d=0; d<(vertex_handler_ref.n_dofs()); ++d) - { - sum_counter_on_vertices[d] = - Utilities::MPI::sum(counter_on_vertices_mpi[d], - mpi_communicator); - sum_porous_dissipation_vertex[d] = - Utilities::MPI::sum(porous_dissipation_vertex_mpi[d], - mpi_communicator); - sum_viscous_dissipation_vertex[d] = - Utilities::MPI::sum(viscous_dissipation_vertex_mpi[d], - mpi_communicator); - sum_solid_vol_fraction_vertex[d] = - Utilities::MPI::sum(solid_vol_fraction_vertex_mpi[d], - mpi_communicator); - - for (unsigned int k=0; k0) - { - for (unsigned int i=0; i0) - { - sum_seepage_velocity_vertex_vec[d] /= sum_counter_on_vertices_vec[d]; - } - } - - } - - // Add the results to the solution to create the output file for Paraview - DataOut data_out; - std::vector - comp_type(dim, - DataComponentInterpretation::component_is_part_of_vector); - comp_type.push_back(DataComponentInterpretation::component_is_scalar); - - GridTools::get_subdomain_association(triangulation, partition_int); - - std::vector solution_name(dim, "displacement"); - solution_name.push_back("pore_pressure"); - - data_out.attach_dof_handler(dof_handler_ref); - data_out.add_data_vector(solution_total, - solution_name, - DataOut::type_dof_data, - comp_type); - - data_out.add_data_vector(solution_total, - gradient_postprocessor); - - const Vector partitioning(partition_int.begin(), - partition_int.end()); - - data_out.add_data_vector(partitioning, "partitioning"); - data_out.add_data_vector(material_id, "material_id"); - - // Integration point results ----------------------------------------------------------- - if (parameters.outtype == "elements") - { - data_out.add_data_vector(cauchy_stresses_total_elements[0], "cauchy_xx"); - data_out.add_data_vector(cauchy_stresses_total_elements[1], "cauchy_yy"); - data_out.add_data_vector(cauchy_stresses_total_elements[2], "cauchy_zz"); - data_out.add_data_vector(cauchy_stresses_total_elements[3], "cauchy_xy"); - data_out.add_data_vector(cauchy_stresses_total_elements[4], "cauchy_xz"); - data_out.add_data_vector(cauchy_stresses_total_elements[5], "cauchy_yz"); - - data_out.add_data_vector(cauchy_stresses_E_elements[0], "cauchy_E_xx"); - data_out.add_data_vector(cauchy_stresses_E_elements[1], "cauchy_E_yy"); - data_out.add_data_vector(cauchy_stresses_E_elements[2], "cauchy_E_zz"); - data_out.add_data_vector(cauchy_stresses_E_elements[3], "cauchy_E_xy"); - data_out.add_data_vector(cauchy_stresses_E_elements[4], "cauchy_E_xz"); - data_out.add_data_vector(cauchy_stresses_E_elements[5], "cauchy_E_yz"); - - data_out.add_data_vector(stretches_elements[0], "stretch_xx"); - data_out.add_data_vector(stretches_elements[1], "stretch_yy"); - data_out.add_data_vector(stretches_elements[2], "stretch_zz"); - - data_out.add_data_vector(seepage_velocity_elements[0], "seepage_vel_x"); - data_out.add_data_vector(seepage_velocity_elements[1], "seepage_vel_y"); - data_out.add_data_vector(seepage_velocity_elements[2], "seepage_vel_z"); - - data_out.add_data_vector(porous_dissipation_elements, "dissipation_porous"); - data_out.add_data_vector(viscous_dissipation_elements, "dissipation_viscous"); - data_out.add_data_vector(solid_vol_fraction_elements, "solid_vol_fraction"); - } - else if (parameters.outtype == "nodes") - { - data_out.add_data_vector(vertex_handler_ref, - sum_cauchy_stresses_total_vertex[0], - "cauchy_xx"); - data_out.add_data_vector(vertex_handler_ref, - sum_cauchy_stresses_total_vertex[1], - "cauchy_yy"); - data_out.add_data_vector(vertex_handler_ref, - sum_cauchy_stresses_total_vertex[2], - "cauchy_zz"); - data_out.add_data_vector(vertex_handler_ref, - sum_cauchy_stresses_total_vertex[3], - "cauchy_xy"); - data_out.add_data_vector(vertex_handler_ref, - sum_cauchy_stresses_total_vertex[4], - "cauchy_xz"); - data_out.add_data_vector(vertex_handler_ref, - sum_cauchy_stresses_total_vertex[5], - "cauchy_yz"); - - data_out.add_data_vector(vertex_handler_ref, - sum_cauchy_stresses_E_vertex[0], - "cauchy_E_xx"); - data_out.add_data_vector(vertex_handler_ref, - sum_cauchy_stresses_E_vertex[1], - "cauchy_E_yy"); - data_out.add_data_vector(vertex_handler_ref, - sum_cauchy_stresses_E_vertex[2], - "cauchy_E_zz"); - data_out.add_data_vector(vertex_handler_ref, - sum_cauchy_stresses_E_vertex[3], - "cauchy_E_xy"); - data_out.add_data_vector(vertex_handler_ref, - sum_cauchy_stresses_E_vertex[4], - "cauchy_E_xz"); - data_out.add_data_vector(vertex_handler_ref, - sum_cauchy_stresses_E_vertex[5], - "cauchy_E_yz"); - - data_out.add_data_vector(vertex_handler_ref, - sum_stretches_vertex[0], - "stretch_xx"); - data_out.add_data_vector(vertex_handler_ref, - sum_stretches_vertex[1], - "stretch_yy"); - data_out.add_data_vector(vertex_handler_ref, - sum_stretches_vertex[2], - "stretch_zz"); - - std::vector - comp_type_vec(dim, - DataComponentInterpretation::component_is_part_of_vector); - std::vector solution_name_vec(dim,"seepage_velocity"); - - data_out.add_data_vector(vertex_vec_handler_ref, - sum_seepage_velocity_vertex_vec, - solution_name_vec, - comp_type_vec); - - data_out.add_data_vector(vertex_handler_ref, - sum_porous_dissipation_vertex, - "dissipation_porous"); - data_out.add_data_vector(vertex_handler_ref, - sum_viscous_dissipation_vertex, - "dissipation_viscous"); - data_out.add_data_vector(vertex_handler_ref, - sum_solid_vol_fraction_vertex, - "solid_vol_fraction"); - } - //--------------------------------------------------------------------- - - data_out.build_patches(degree_displ); - - struct Filename - { - static std::string get_filename_vtu(unsigned int process, - unsigned int timestep, - const unsigned int n_digits = 5) - { - std::ostringstream filename_vtu; - filename_vtu - << "solution." - << Utilities::int_to_string(process, n_digits) - << "." - << Utilities::int_to_string(timestep, n_digits) - << ".vtu"; - return filename_vtu.str(); - } - - static std::string get_filename_pvtu(unsigned int timestep, - const unsigned int n_digits = 5) - { - std::ostringstream filename_vtu; - filename_vtu - << "solution." - << Utilities::int_to_string(timestep, n_digits) - << ".pvtu"; - return filename_vtu.str(); - } - - static std::string get_filename_pvd (void) - { - std::ostringstream filename_vtu; - filename_vtu - << "solution.pvd"; - return filename_vtu.str(); - } - }; - - const std::string filename_vtu = Filename::get_filename_vtu(this_mpi_process, - timestep); - std::ofstream output(filename_vtu.c_str()); - data_out.write_vtu(output); - - // We have a collection of files written in parallel - // This next set of steps should only be performed by master process - if (this_mpi_process == 0) - { - // List of all files written out at this timestep by all processors - std::vector parallel_filenames_vtu; - for (unsigned int p=0; p> time_and_name_history; - time_and_name_history.push_back(std::make_pair(current_time, - filename_pvtu)); - const std::string filename_pvd(Filename::get_filename_pvd()); - std::ofstream pvd_output(filename_pvd.c_str()); - DataOutBase::write_pvd_record(pvd_output, time_and_name_history); - } - } - - - //Print results to plotting file - template - void Solid::output_results_to_plot( - const unsigned int timestep, - const double current_time, - TrilinosWrappers::MPI::BlockVector solution_IN, - std::vector > &tracked_vertices_IN, - std::ofstream &plotpointfile) const - { - TrilinosWrappers::MPI::BlockVector solution_total(locally_owned_partitioning, - locally_relevant_partitioning, - mpi_communicator, - false); - - (void) timestep; - solution_total = solution_IN; - - //Variables needed to print the solution file for plotting - Point reaction_force; - Point reaction_force_pressure; - Point reaction_force_extra; - double total_fluid_flow = 0.0; - double total_porous_dissipation = 0.0; - double total_viscous_dissipation = 0.0; - double total_solid_vol = 0.0; - double total_vol_current = 0.0; - double total_vol_reference = 0.0; - std::vector> solution_vertices(tracked_vertices_IN.size()); - - //Auxiliar variables needed for mpi processing - Tensor<1,dim> sum_reaction_mpi; - Tensor<1,dim> sum_reaction_pressure_mpi; - Tensor<1,dim> sum_reaction_extra_mpi; - sum_reaction_mpi = 0.0; - sum_reaction_pressure_mpi = 0.0; - sum_reaction_extra_mpi = 0.0; - double sum_total_flow_mpi = 0.0; - double sum_porous_dissipation_mpi = 0.0; - double sum_viscous_dissipation_mpi = 0.0; - double sum_solid_vol_mpi = 0.0; - double sum_vol_current_mpi = 0.0; - double sum_vol_reference_mpi = 0.0; - - //Declare an instance of the material class object - if (parameters.mat_type == "Neo-Hooke") - NeoHooke material(parameters,time); - else if (parameters.mat_type == "Ogden") - Ogden material(parameters, time); - else if (parameters.mat_type == "visco-Ogden") - visco_Ogden material(parameters,time); - else - Assert (false, ExcMessage("Material type not implemented")); - - //Define a local instance of FEValues to compute updated values required - //to calculate stresses - const UpdateFlags uf_cell(update_values | update_gradients | - update_JxW_values); - FEValues fe_values_ref (fe, qf_cell, uf_cell); - - //Iterate through elements (cells) and Gauss Points - FilteredIterator::active_cell_iterator> - cell(IteratorFilters::LocallyOwnedCell(), - dof_handler_ref.begin_active()), - endc(IteratorFilters::LocallyOwnedCell(), - dof_handler_ref.end()); - //start cell loop - for (; cell!=endc; ++cell) - { - Assert(cell->is_locally_owned(), ExcInternalError()); - Assert(cell->subdomain_id() == this_mpi_process, ExcInternalError()); - - fe_values_ref.reinit(cell); - - std::vector> solution_grads_u(n_q_points); - fe_values_ref[u_fe].get_function_gradients(solution_total, - solution_grads_u); - - std::vector solution_values_p_fluid_total(n_q_points); - fe_values_ref[p_fluid_fe].get_function_values(solution_total, - solution_values_p_fluid_total); - - std::vector> solution_grads_p_fluid_AD(n_q_points); - fe_values_ref[p_fluid_fe].get_function_gradients(solution_total, - solution_grads_p_fluid_AD); - - //start gauss point loop - for (unsigned int q_point=0; q_point - F_AD = Physics::Elasticity::Kinematics::F(solution_grads_u[q_point]); - ADNumberType det_F_AD = determinant(F_AD); - const double det_F = Tensor<0,dim,double>(det_F_AD); - - const std::vector>> - lqph = quadrature_point_history.get_data(cell); - Assert(lqph.size() == n_q_points, ExcInternalError()); - - double JxW = fe_values_ref.JxW(q_point); - - //Volumes - sum_vol_current_mpi += det_F * JxW; - sum_vol_reference_mpi += JxW; - sum_solid_vol_mpi += parameters.solid_vol_frac * JxW * det_F; - - //Seepage velocity - const Tensor<2,dim,ADNumberType> F_inv = invert(F_AD); - const Tensor<1,dim,ADNumberType> - grad_p_fluid_AD = solution_grads_p_fluid_AD[q_point]*F_inv; - const Tensor<1,dim,ADNumberType> seepage_vel_AD - = lqph[q_point]->get_seepage_velocity_current(F_AD, grad_p_fluid_AD); - - //Dissipations - const double porous_dissipation = - lqph[q_point]->get_porous_dissipation(F_AD, grad_p_fluid_AD); - sum_porous_dissipation_mpi += porous_dissipation * det_F * JxW; - - const double viscous_dissipation = lqph[q_point]->get_viscous_dissipation(); - sum_viscous_dissipation_mpi += viscous_dissipation * det_F * JxW; - - //--------------------------------------------------------------- - } //end gauss point loop - - // Compute reaction force on load boundary & total fluid flow across - // drained boundary. - // Define a local instance of FEFaceValues to compute values required - // to calculate reaction force - const UpdateFlags uf_face( update_values | update_gradients | - update_normal_vectors | update_JxW_values ); - FEFaceValues fe_face_values_ref(fe, qf_face, uf_face); - - //start face loop - for (unsigned int face=0; face::faces_per_cell; ++face) - { - //Reaction force - if (cell->face(face)->at_boundary() == true && - cell->face(face)->boundary_id() == get_reaction_boundary_id_for_output() ) - { - fe_face_values_ref.reinit(cell, face); - - //Get displacement gradients for current face - std::vector > solution_grads_u_f(n_q_points_f); - fe_face_values_ref[u_fe].get_function_gradients - (solution_total, - solution_grads_u_f); - - //Get pressure for current element - std::vector< double > solution_values_p_fluid_total_f(n_q_points_f); - fe_face_values_ref[p_fluid_fe].get_function_values - (solution_total, - solution_values_p_fluid_total_f); - - //start gauss points on faces loop - for (unsigned int f_q_point=0; f_q_point &N = fe_face_values_ref.normal_vector(f_q_point); - const double JxW_f = fe_face_values_ref.JxW(f_q_point); - - //Compute deformation gradient from displacements gradient - //(present configuration) - const Tensor<2,dim,ADNumberType> F_AD = - Physics::Elasticity::Kinematics::F(solution_grads_u_f[f_q_point]); - - const std::vector>> - lqph = quadrature_point_history.get_data(cell); - Assert(lqph.size() == n_q_points, ExcInternalError()); - - const double p_fluid = solution_values_p_fluid_total[f_q_point]; - - //Cauchy stress - static const SymmetricTensor<2,dim,double> - I (Physics::Elasticity::StandardTensors::I); - SymmetricTensor<2,dim> sigma_E; - const SymmetricTensor<2,dim,ADNumberType> sigma_E_AD = - lqph[f_q_point]->get_Cauchy_E(F_AD); - - for (unsigned int i=0; i(sigma_E_AD[i][j]); - - SymmetricTensor<2,dim> sigma_fluid_vol(I); - sigma_fluid_vol *= -1.0*p_fluid; - const SymmetricTensor<2,dim> sigma = sigma_E+sigma_fluid_vol; - sum_reaction_mpi += sigma * N * JxW_f; - sum_reaction_pressure_mpi += sigma_fluid_vol * N * JxW_f; - sum_reaction_extra_mpi += sigma_E * N * JxW_f; - }//end gauss points on faces loop - } - - //Fluid flow - if (cell->face(face)->at_boundary() == true && - (cell->face(face)->boundary_id() == - get_drained_boundary_id_for_output().first || - cell->face(face)->boundary_id() == - get_drained_boundary_id_for_output().second ) ) - { - fe_face_values_ref.reinit(cell, face); - - //Get displacement gradients for current face - std::vector> solution_grads_u_f(n_q_points_f); - fe_face_values_ref[u_fe].get_function_gradients - (solution_total, - solution_grads_u_f); - - //Get pressure gradients for current face - std::vector> solution_grads_p_f(n_q_points_f); - fe_face_values_ref[p_fluid_fe].get_function_gradients - (solution_total, - solution_grads_p_f); - - //start gauss points on faces loop - for (unsigned int f_q_point=0; f_q_point &N = - fe_face_values_ref.normal_vector(f_q_point); - const double JxW_f = fe_face_values_ref.JxW(f_q_point); - - //Deformation gradient and inverse from displacements gradient - //(present configuration) - const Tensor<2,dim,ADNumberType> F_AD - = Physics::Elasticity::Kinematics::F(solution_grads_u_f[f_q_point]); - - const Tensor<2,dim,ADNumberType> F_inv_AD = invert(F_AD); - ADNumberType det_F_AD = determinant(F_AD); - - const std::vector>> - lqph = quadrature_point_history.get_data(cell); - Assert(lqph.size() == n_q_points, ExcInternalError()); - - //Seepage velocity - Tensor<1,dim> seepage; - double det_F = Tensor<0,dim,double>(det_F_AD); - const Tensor<1,dim,ADNumberType> grad_p - = solution_grads_p_f[f_q_point]*F_inv_AD; - const Tensor<1,dim,ADNumberType> seepage_AD - = lqph[f_q_point]->get_seepage_velocity_current(F_AD, grad_p); - - for (unsigned int i=0; i(seepage_AD[i]); - - sum_total_flow_mpi += (seepage/det_F) * N * JxW_f; - }//end gauss points on faces loop - } - }//end face loop - }//end cell loop - - //Sum the results from different MPI process and then add to the reaction_force vector - //In theory, the solution on each surface (each cell) only exists in one MPI process - //so, we add all MPI process, one will have the solution and the others will be zero - for (unsigned int d=0; d solution_u_vector(solution_vector_u_MPI); - Vector solution_p_vector(solution_vector_p_MPI); - - if (this_mpi_process == 0) - { - //Append the pressure solution vector to the displacement solution vector, - //creating a single solution vector equivalent to the original BlockVector - //so FEFieldFunction will work with the dof_handler_ref. - Vector solution_vector(solution_p_vector.size() - +solution_u_vector.size()); - - for (unsigned int d=0; d<(solution_u_vector.size()); ++d) - solution_vector[d] = solution_u_vector[d]; - - for (unsigned int d=0; d<(solution_p_vector.size()); ++d) - solution_vector[solution_u_vector.size()+d] = solution_p_vector[d]; - - Functions::FEFieldFunction> - find_solution(dof_handler_ref, solution_vector); - - for (unsigned int p=0; p update(dim+1); - Point pt_ref; - - pt_ref[0]= tracked_vertices_IN[p][0]; - pt_ref[1]= tracked_vertices_IN[p][1]; - pt_ref[2]= tracked_vertices_IN[p][2]; - - find_solution.vector_value(pt_ref, update); - - for (unsigned int d=0; d<(dim+1); ++d) - { - //For values close to zero, set to 0.0 - if (abs(update[d])<1.5*parameters.tol_u) - update[d] = 0.0; - solution_vertices[p][d] = update[d]; - } - } - // Write the results to the plotting file. - // Add two blank lines between cycles in the cyclic loading examples so GNUPLOT can detect each cycle as a different block - if (( (parameters.geom_type == "Budday_cube_tension_compression_fully_fixed")|| - (parameters.geom_type == "Budday_cube_tension_compression")|| - (parameters.geom_type == "Budday_cube_shear_fully_fixed") ) && - ( (abs(current_time - parameters.end_time/3.) <0.9*parameters.delta_t)|| - (abs(current_time - 2.*parameters.end_time/3.)<0.9*parameters.delta_t) ) && - parameters.num_cycle_sets == 1 ) - { - plotpointfile << std::endl<< std::endl; - } - if (( (parameters.geom_type == "Budday_cube_tension_compression_fully_fixed")|| - (parameters.geom_type == "Budday_cube_tension_compression")|| - (parameters.geom_type == "Budday_cube_shear_fully_fixed") ) && - ( (abs(current_time - parameters.end_time/9.) <0.9*parameters.delta_t)|| - (abs(current_time - 2.*parameters.end_time/9.)<0.9*parameters.delta_t)|| - (abs(current_time - 3.*parameters.end_time/9.)<0.9*parameters.delta_t)|| - (abs(current_time - 5.*parameters.end_time/9.)<0.9*parameters.delta_t)|| - (abs(current_time - 7.*parameters.end_time/9.)<0.9*parameters.delta_t) ) && - parameters.num_cycle_sets == 2 ) - { - plotpointfile << std::endl<< std::endl; - } - - plotpointfile << std::setprecision(6) << std::scientific; - plotpointfile << std::setw(16) << current_time << "," - << std::setw(15) << total_vol_reference << "," - << std::setw(15) << total_vol_current << "," - << std::setw(15) << total_solid_vol << ","; - - if (current_time == 0.0) - { - for (unsigned int p=0; p - void Solid::print_console_file_header(std::ofstream &outputfile) const - { - outputfile << "/*-----------------------------------------------------------------------------------------"; - outputfile << "\n\n Poro-viscoelastic formulation to solve nonlinear solid mechanics problems using deal.ii"; - outputfile << "\n\n Problem setup by E Comellas and J-P Pelteret, University of Erlangen-Nuremberg, 2018"; - outputfile << "\n\n/*-----------------------------------------------------------------------------------------"; - outputfile << "\n\nCONSOLE OUTPUT: \n\n"; - } - - //Header for plotting output file - template - void Solid::print_plot_file_header(std::vector > &tracked_vertices, - std::ofstream &plotpointfile) const - { - plotpointfile << "#\n# *** Solution history for tracked vertices -- DOF: 0 = Ux, 1 = Uy, 2 = Uz, 3 = P ***" - << std::endl; - - for (unsigned int p=0; p - void Solid::print_console_file_footer(std::ofstream &outputfile) const - { - //Copy "parameters" file at end of output file. - std::ifstream infile("parameters.prm"); - std::string content = ""; - int i; - - for(i=0 ; infile.eof()!=true ; i++) - { - char aux = infile.get(); - content += aux; - if(aux=='\n') content += '#'; - } - - i--; - content.erase(content.end()-1); - infile.close(); - - outputfile << "\n\n\n\n PARAMETERS FILE USED IN THIS COMPUTATION: \n#" - << std::endl - << content; - } - - //Footer for plotting output file - template - void Solid::print_plot_file_footer(std::ofstream &plotpointfile) const - { - //Copy "parameters" file at end of output file. - std::ifstream infile("parameters.prm"); - std::string content = ""; - int i; - - for(i=0 ; infile.eof()!=true ; i++) - { - char aux = infile.get(); - content += aux; - if(aux=='\n') content += '#'; - } - - i--; - content.erase(content.end()-1); - infile.close(); - - plotpointfile << "#"<< std::endl - << "#"<< std::endl - << "# PARAMETERS FILE USED IN THIS COMPUTATION:" << std::endl - << "#"<< std::endl - << content; - } - - - // @sect3{Verification examples from Ehlers and Eipper 1999} - // We group the definition of the geometry, boundary and loading conditions specific to - // the verification examples from Ehlers and Eipper 1999 into specific classes. - - //@sect4{Base class: Tube geometry and boundary conditions} - template - class VerificationEhlers1999TubeBase - : public Solid - { - public: - VerificationEhlers1999TubeBase (const Parameters::AllParameters ¶meters) - : Solid (parameters) - {} - - virtual ~VerificationEhlers1999TubeBase () {} - - private: - virtual void make_grid() override - { - GridGenerator::cylinder( this->triangulation, - 0.1, - 0.5); - - const double rot_angle = 3.0*numbers::PI/2.0; - GridTools::rotate( Point<3>::unit_vector(1), rot_angle, this->triangulation); - - this->triangulation.reset_manifold(0); - static const CylindricalManifold manifold_description_3d(2); - this->triangulation.set_manifold (0, manifold_description_3d); - GridTools::scale(this->parameters.scale, this->triangulation); - this->triangulation.refine_global(std::max (1U, this->parameters.global_refinement)); - this->triangulation.reset_manifold(0); - } - - virtual void define_tracked_vertices(std::vector > &tracked_vertices) override - { - tracked_vertices[0][0] = 0.0*this->parameters.scale; - tracked_vertices[0][1] = 0.0*this->parameters.scale; - tracked_vertices[0][2] = 0.5*this->parameters.scale; - - tracked_vertices[1][0] = 0.0*this->parameters.scale; - tracked_vertices[1][1] = 0.0*this->parameters.scale; - tracked_vertices[1][2] = -0.5*this->parameters.scale; - } - - virtual void make_dirichlet_constraints(AffineConstraints &constraints) override - { - if (this->time.get_timestep() < 2) - { - VectorTools::interpolate_boundary_values(this->dof_handler_ref, - 2, - Functions::ConstantFunction(this->parameters.drained_pressure,this->n_components), - constraints, - (this->fe.component_mask(this->pressure))); - } - else - { - VectorTools::interpolate_boundary_values(this->dof_handler_ref, - 2, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->pressure))); - } - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 0, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->x_displacement)| - this->fe.component_mask(this->y_displacement) ) ); - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 1, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->x_displacement) | - this->fe.component_mask(this->y_displacement) | - this->fe.component_mask(this->z_displacement) )); - } - - virtual double - get_prescribed_fluid_flow (const types::boundary_id &boundary_id, - const Point &pt) const override - { - (void)pt; - (void)boundary_id; - return 0.0; - } - - virtual types::boundary_id - get_reaction_boundary_id_for_output() const override - { - return 2; - } - - virtual std::pair - get_drained_boundary_id_for_output() const override - { - return std::make_pair(2,2); - } - - virtual std::vector - get_dirichlet_load(const types::boundary_id &boundary_id, - const int &direction) const override - { - std::vector displ_incr(dim, 0.0); - (void)boundary_id; - (void)direction; - AssertThrow(false, ExcMessage("Displacement loading not implemented for Ehlers verification examples.")); - - return displ_incr; - } - }; - - //@sect4{Derived class: Step load example} - template - class VerificationEhlers1999StepLoad - : public VerificationEhlers1999TubeBase - { - public: - VerificationEhlers1999StepLoad (const Parameters::AllParameters ¶meters) - : VerificationEhlers1999TubeBase (parameters) - {} - - virtual ~VerificationEhlers1999StepLoad () {} - - private: - virtual Tensor<1,dim> - get_neumann_traction (const types::boundary_id &boundary_id, - const Point &pt, - const Tensor<1,dim> &N) const override - { - if (this->parameters.load_type == "pressure") - { - if (boundary_id == 2) - { - return this->parameters.load * N; - } - } - - (void)pt; - - return Tensor<1,dim>(); - } - }; - - //@sect4{Derived class: Load increasing example} - template - class VerificationEhlers1999IncreaseLoad - : public VerificationEhlers1999TubeBase - { - public: - VerificationEhlers1999IncreaseLoad (const Parameters::AllParameters ¶meters) - : VerificationEhlers1999TubeBase (parameters) - {} - - virtual ~VerificationEhlers1999IncreaseLoad () {} - - private: - virtual Tensor<1,dim> - get_neumann_traction (const types::boundary_id &boundary_id, - const Point &pt, - const Tensor<1,dim> &N) const override - { - if (this->parameters.load_type == "pressure") - { - if (boundary_id == 2) - { - const double initial_load = this->parameters.load; - const double final_load = 20.0*initial_load; - const double initial_time = this->time.get_delta_t(); - const double final_time = this->time.get_end(); - const double current_time = this->time.get_current(); - const double load = initial_load + (final_load-initial_load)*(current_time-initial_time)/(final_time-initial_time); - return load * N; - } - } - - (void)pt; - - return Tensor<1,dim>(); - } - }; - - //@sect4{Class: Consolidation cube} - template - class VerificationEhlers1999CubeConsolidation - : public Solid - { - public: - VerificationEhlers1999CubeConsolidation (const Parameters::AllParameters ¶meters) - : Solid (parameters) - {} - - virtual ~VerificationEhlers1999CubeConsolidation () {} - - private: - virtual void - make_grid() override - { - GridGenerator::hyper_rectangle(this->triangulation, - Point(0.0, 0.0, 0.0), - Point(1.0, 1.0, 1.0), - true); - - GridTools::scale(this->parameters.scale, this->triangulation); - this->triangulation.refine_global(std::max (1U, this->parameters.global_refinement)); - - typename Triangulation::active_cell_iterator cell = - this->triangulation.begin_active(), endc = this->triangulation.end(); - for (; cell != endc; ++cell) - { - for (unsigned int face = 0; face < GeometryInfo::faces_per_cell; ++face) - if (cell->face(face)->at_boundary() == true && - cell->face(face)->center()[2] == 1.0 * this->parameters.scale) - { - if (cell->face(face)->center()[0] < 0.5 * this->parameters.scale && - cell->face(face)->center()[1] < 0.5 * this->parameters.scale) - cell->face(face)->set_boundary_id(100); - else - cell->face(face)->set_boundary_id(101); - } - } - } - - virtual void - define_tracked_vertices(std::vector > &tracked_vertices) override - { - tracked_vertices[0][0] = 0.0*this->parameters.scale; - tracked_vertices[0][1] = 0.0*this->parameters.scale; - tracked_vertices[0][2] = 1.0*this->parameters.scale; - - tracked_vertices[1][0] = 0.0*this->parameters.scale; - tracked_vertices[1][1] = 0.0*this->parameters.scale; - tracked_vertices[1][2] = 0.0*this->parameters.scale; - } - - virtual void - make_dirichlet_constraints(AffineConstraints &constraints) override - { - if (this->time.get_timestep() < 2) - { - VectorTools::interpolate_boundary_values(this->dof_handler_ref, - 101, - Functions::ConstantFunction(this->parameters.drained_pressure,this->n_components), - constraints, - (this->fe.component_mask(this->pressure))); - } - else - { - VectorTools::interpolate_boundary_values(this->dof_handler_ref, - 101, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->pressure))); - } - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 0, - Functions::ZeroFunction(this->n_components), - constraints, - this->fe.component_mask(this->x_displacement)); - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 1, - Functions::ZeroFunction(this->n_components), - constraints, - this->fe.component_mask(this->x_displacement)); - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 2, - Functions::ZeroFunction(this->n_components), - constraints, - this->fe.component_mask(this->y_displacement)); - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 3, - Functions::ZeroFunction(this->n_components), - constraints, - this->fe.component_mask(this->y_displacement)); - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 4, - Functions::ZeroFunction(this->n_components), - constraints, - ( this->fe.component_mask(this->x_displacement) | - this->fe.component_mask(this->y_displacement) | - this->fe.component_mask(this->z_displacement) )); - } - - virtual Tensor<1,dim> - get_neumann_traction (const types::boundary_id &boundary_id, - const Point &pt, - const Tensor<1,dim> &N) const override - { - if (this->parameters.load_type == "pressure") - { - if (boundary_id == 100) - { - return this->parameters.load * N; - } - } - - (void)pt; - - return Tensor<1,dim>(); - } - - virtual double - get_prescribed_fluid_flow (const types::boundary_id &boundary_id, - const Point &pt) const override - { - (void)pt; - (void)boundary_id; - return 0.0; - } - - virtual types::boundary_id - get_reaction_boundary_id_for_output() const override - { - return 100; - } - - virtual std::pair - get_drained_boundary_id_for_output() const override - { - return std::make_pair(101,101); - } - - virtual std::vector - get_dirichlet_load(const types::boundary_id &boundary_id, - const int &direction) const override - { - std::vector displ_incr(dim, 0.0); - (void)boundary_id; - (void)direction; - AssertThrow(false, ExcMessage("Displacement loading not implemented for Ehlers verification examples.")); - - return displ_incr; - } - }; - - //@sect4{Franceschini experiments} - template - class Franceschini2006Consolidation - : public Solid - { - public: - Franceschini2006Consolidation (const Parameters::AllParameters ¶meters) - : Solid (parameters) - {} - - virtual ~Franceschini2006Consolidation () {} - - private: - virtual void make_grid() override - { - const Point mesh_center(0.0, 0.0); - const double radius = 0.5; - //const double height = 0.27; //8.1 mm for 30 mm radius - const double height = 0.23; //6.9 mm for 30 mm radius - Triangulation triangulation_in; - GridGenerator::hyper_ball( triangulation_in, - mesh_center, - radius); - - GridGenerator::extrude_triangulation(triangulation_in, - 2, - height, - this->triangulation); - - const CylindricalManifold cylinder_3d(2); - const types::manifold_id cylinder_id = 0; - - - this->triangulation.set_manifold(cylinder_id, cylinder_3d); - - for (auto cell : this->triangulation.active_cell_iterators()) - { - for (unsigned int face = 0; face < GeometryInfo::faces_per_cell; ++face) - { - if (cell->face(face)->at_boundary() == true) - { - if (cell->face(face)->center()[2] == 0.0) - cell->face(face)->set_boundary_id(1); - - else if (cell->face(face)->center()[2] == height) - cell->face(face)->set_boundary_id(2); - - else - { - cell->face(face)->set_boundary_id(0); - cell->face(face)->set_all_manifold_ids(cylinder_id); - } - } - } - } - - GridTools::scale(this->parameters.scale, this->triangulation); - this->triangulation.refine_global(std::max (1U, this->parameters.global_refinement)); - } - - virtual void define_tracked_vertices(std::vector > &tracked_vertices) override - { - tracked_vertices[0][0] = 0.0*this->parameters.scale; - tracked_vertices[0][1] = 0.0*this->parameters.scale; - // tracked_vertices[0][2] = 0.27*this->parameters.scale; - tracked_vertices[0][2] = 0.23*this->parameters.scale; - - tracked_vertices[1][0] = 0.0*this->parameters.scale; - tracked_vertices[1][1] = 0.0*this->parameters.scale; - tracked_vertices[1][2] = 0.0*this->parameters.scale; - } - - virtual void make_dirichlet_constraints(AffineConstraints &constraints) override - { - if (this->time.get_timestep() < 2) - { - VectorTools::interpolate_boundary_values(this->dof_handler_ref, - 1, - Functions::ConstantFunction(this->parameters.drained_pressure,this->n_components), - constraints, - (this->fe.component_mask(this->pressure))); - - VectorTools::interpolate_boundary_values(this->dof_handler_ref, - 2, - Functions::ConstantFunction(this->parameters.drained_pressure,this->n_components), - constraints, - (this->fe.component_mask(this->pressure))); - } - else - { - VectorTools::interpolate_boundary_values(this->dof_handler_ref, - 1, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->pressure))); - - VectorTools::interpolate_boundary_values(this->dof_handler_ref, - 2, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->pressure))); - } - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 0, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->x_displacement)| - this->fe.component_mask(this->y_displacement) ) ); - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 1, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->x_displacement) | - this->fe.component_mask(this->y_displacement) | - this->fe.component_mask(this->z_displacement) )); - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 2, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->x_displacement) | - this->fe.component_mask(this->y_displacement) )); - } - - virtual double - get_prescribed_fluid_flow (const types::boundary_id &boundary_id, - const Point &pt) const override - { - (void)pt; - (void)boundary_id; - return 0.0; - } - - virtual types::boundary_id - get_reaction_boundary_id_for_output() const override - { - return 2; - } - - virtual std::pair - get_drained_boundary_id_for_output() const override - { - return std::make_pair(1,2); - } - - virtual std::vector - get_dirichlet_load(const types::boundary_id &boundary_id, - const int &direction) const override - { - std::vector displ_incr(dim, 0.0); - (void)boundary_id; - (void)direction; - AssertThrow(false, ExcMessage("Displacement loading not implemented for Franceschini examples.")); - - return displ_incr; - } - - virtual Tensor<1,dim> - get_neumann_traction (const types::boundary_id &boundary_id, - const Point &pt, - const Tensor<1,dim> &N) const override - { - if (this->parameters.load_type == "pressure") - { - if (boundary_id == 2) - { - return (this->parameters.load * N); - /* - const double final_load = this->parameters.load; - const double final_load_time = 10 * this->time.get_delta_t(); - const double current_time = this->time.get_current(); - - - const double c = final_load_time / 2.0; - const double r = 200.0 * 0.03 / c; - - const double load = final_load * std::exp(r * current_time) - / ( std::exp(c * current_time) + std::exp(r * current_time)); - return load * N; - */ - } - } - - (void)pt; - - return Tensor<1,dim>(); - } - }; - - // @sect3{Examples to reproduce experiments by Budday et al. 2017} - // We group the definition of the geometry, boundary and loading conditions specific to - // the examples to reproduce experiments by Budday et al. 2017 into specific classes. - - //@sect4{Base class: Cube geometry and loading pattern} - template - class BrainBudday2017BaseCube - : public Solid - { - public: - BrainBudday2017BaseCube (const Parameters::AllParameters ¶meters) - : Solid (parameters) - {} - - virtual ~BrainBudday2017BaseCube () {} - - private: - virtual void - make_grid() override - { - GridGenerator::hyper_cube(this->triangulation, - 0.0, - 1.0, - true); - - typename Triangulation::active_cell_iterator cell = - this->triangulation.begin_active(), endc = this->triangulation.end(); - for (; cell != endc; ++cell) - { - for (unsigned int face = 0; face < GeometryInfo::faces_per_cell; ++face) - if (cell->face(face)->at_boundary() == true && - ( cell->face(face)->boundary_id() == 0 || - cell->face(face)->boundary_id() == 1 || - cell->face(face)->boundary_id() == 2 || - cell->face(face)->boundary_id() == 3 ) ) - - cell->face(face)->set_boundary_id(100); - - } - - GridTools::scale(this->parameters.scale, this->triangulation); - this->triangulation.refine_global(std::max (1U, this->parameters.global_refinement)); - } - - virtual double - get_prescribed_fluid_flow (const types::boundary_id &boundary_id, - const Point &pt) const override - { - (void)pt; - (void)boundary_id; - return 0.0; - } - - virtual std::pair - get_drained_boundary_id_for_output() const override - { - return std::make_pair(100,100); - } - }; - - //@sect4{Derived class: Uniaxial boundary conditions} - template - class BrainBudday2017CubeTensionCompression - : public BrainBudday2017BaseCube - { - public: - BrainBudday2017CubeTensionCompression (const Parameters::AllParameters ¶meters) - : BrainBudday2017BaseCube (parameters) - {} - - virtual ~BrainBudday2017CubeTensionCompression () {} - - private: - virtual void - define_tracked_vertices(std::vector > &tracked_vertices) override - { - tracked_vertices[0][0] = 0.5*this->parameters.scale; - tracked_vertices[0][1] = 0.5*this->parameters.scale; - tracked_vertices[0][2] = 1.0*this->parameters.scale; - - tracked_vertices[1][0] = 0.5*this->parameters.scale; - tracked_vertices[1][1] = 0.5*this->parameters.scale; - tracked_vertices[1][2] = 0.5*this->parameters.scale; - } - - virtual void - make_dirichlet_constraints(AffineConstraints &constraints) override - { - if (this->time.get_timestep() < 2) - { - VectorTools::interpolate_boundary_values(this->dof_handler_ref, - 100, - Functions::ConstantFunction(this->parameters.drained_pressure,this->n_components), - constraints, - (this->fe.component_mask(this->pressure))); - } - else - { - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 100, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->pressure))); - } - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 4, - Functions::ZeroFunction(this->n_components), - constraints, - this->fe.component_mask(this->z_displacement) ); - - Point fix_node(0.5*this->parameters.scale, 0.5*this->parameters.scale, 0.0); - typename DoFHandler::active_cell_iterator - cell = this->dof_handler_ref.begin_active(), endc = this->dof_handler_ref.end(); - for (; cell != endc; ++cell) - for (unsigned int node = 0; node < GeometryInfo::vertices_per_cell; ++node) - { - if ( (abs(cell->vertex(node)[2]-fix_node[2]) < (1e-6 * this->parameters.scale)) - && (abs(cell->vertex(node)[0]-fix_node[0]) < (1e-6 * this->parameters.scale))) - constraints.add_line(cell->vertex_dof_index(node, 0)); - - if ( (abs(cell->vertex(node)[2]-fix_node[2]) < (1e-6 * this->parameters.scale)) - && (abs(cell->vertex(node)[1]-fix_node[1]) < (1e-6 * this->parameters.scale))) - constraints.add_line(cell->vertex_dof_index(node, 1)); - } - - if (this->parameters.load_type == "displacement") - { - const std::vector value = get_dirichlet_load(5,2); - FEValuesExtractors::Scalar direction; - direction = this->z_displacement; - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 5, - Functions::ConstantFunction(value[2],this->n_components), - constraints, - this->fe.component_mask(direction)); - } - } - - virtual Tensor<1,dim> - get_neumann_traction (const types::boundary_id &boundary_id, - const Point &pt, - const Tensor<1,dim> &N) const override - { - if (this->parameters.load_type == "pressure") - { - if (boundary_id == 5) - { - const double final_load = this->parameters.load; - const double current_time = this->time.get_current(); - const double final_time = this->time.get_end(); - const double num_cycles = 3.0; - - return final_load/2.0 * (1.0 - std::sin(numbers::PI * (2.0*num_cycles*current_time/final_time + 0.5))) * N; - } - } - - (void)pt; - - return Tensor<1,dim>(); - } - - virtual types::boundary_id - get_reaction_boundary_id_for_output() const override - { - return 5; - } - - virtual std::vector - get_dirichlet_load(const types::boundary_id &boundary_id, - const int &direction) const override - { - std::vector displ_incr(dim,0.0); - - if ( (boundary_id == 5) && (direction == 2) ) - { - const double final_displ = this->parameters.load; - const double current_time = this->time.get_current(); - const double final_time = this->time.get_end(); - const double delta_time = this->time.get_delta_t(); - const double num_cycles = 3.0; - double current_displ = 0.0; - double previous_displ = 0.0; - - if (this->parameters.num_cycle_sets == 1) - { - current_displ = final_displ/2.0 * (1.0 - - std::sin(numbers::PI * (2.0*num_cycles*current_time/final_time + 0.5))); - previous_displ = final_displ/2.0 * (1.0 - - std::sin(numbers::PI * (2.0*num_cycles*(current_time-delta_time)/final_time + 0.5))); - } - else - { - if ( current_time <= (final_time*1.0/3.0) ) - { - current_displ = final_displ/2.0 * (1.0 - std::sin(numbers::PI * - (2.0*num_cycles*current_time/(final_time*1.0/3.0) + 0.5))); - previous_displ = final_displ/2.0 * (1.0 - std::sin(numbers::PI * - (2.0*num_cycles*(current_time-delta_time)/(final_time*1.0/3.0) + 0.5))); - } - else - { - current_displ = final_displ * (1.0 - std::sin(numbers::PI * - (2.0*num_cycles*current_time / (final_time*2.0/3.0) - - (num_cycles - 0.5) ))); - previous_displ = final_displ * (1.0 - std::sin(numbers::PI * - (2.0*num_cycles*(current_time-delta_time) / (final_time*2.0/3.0) - - (num_cycles - 0.5)))); - } - } - displ_incr[2] = current_displ - previous_displ; - } - return displ_incr; - } - }; - - //@sect4{Derived class: No lateral displacement in loading surfaces} - template - class BrainBudday2017CubeTensionCompressionFullyFixed - : public BrainBudday2017BaseCube - { - public: - BrainBudday2017CubeTensionCompressionFullyFixed (const Parameters::AllParameters ¶meters) - : BrainBudday2017BaseCube (parameters) - {} - - virtual ~BrainBudday2017CubeTensionCompressionFullyFixed () {} - - private: - virtual void - define_tracked_vertices(std::vector > &tracked_vertices) override - { - tracked_vertices[0][0] = 0.5*this->parameters.scale; - tracked_vertices[0][1] = 0.5*this->parameters.scale; - tracked_vertices[0][2] = 1.0*this->parameters.scale; - - tracked_vertices[1][0] = 0.5*this->parameters.scale; - tracked_vertices[1][1] = 0.5*this->parameters.scale; - tracked_vertices[1][2] = 0.5*this->parameters.scale; - } - - virtual void - make_dirichlet_constraints(AffineConstraints &constraints) override - { - if (this->time.get_timestep() < 2) - { - VectorTools::interpolate_boundary_values(this->dof_handler_ref, - 100, - Functions::ConstantFunction(this->parameters.drained_pressure,this->n_components), - constraints, - (this->fe.component_mask(this->pressure))); - } - else - { - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 100, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->pressure))); - } - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 4, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->x_displacement) | - this->fe.component_mask(this->y_displacement) | - this->fe.component_mask(this->z_displacement) )); - - - if (this->parameters.load_type == "displacement") - { - const std::vector value = get_dirichlet_load(5,2); - FEValuesExtractors::Scalar direction; - direction = this->z_displacement; - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 5, - Functions::ConstantFunction(value[2],this->n_components), - constraints, - this->fe.component_mask(direction) ); - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 5, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->x_displacement) | - this->fe.component_mask(this->y_displacement) )); - } - } - - virtual Tensor<1,dim> - get_neumann_traction (const types::boundary_id &boundary_id, - const Point &pt, - const Tensor<1,dim> &N) const override - { - if (this->parameters.load_type == "pressure") - { - if (boundary_id == 5) - { - const double final_load = this->parameters.load; - const double current_time = this->time.get_current(); - const double final_time = this->time.get_end(); - const double num_cycles = 3.0; - - return final_load/2.0 * (1.0 - std::sin(numbers::PI * (2.0*num_cycles*current_time/final_time + 0.5))) * N; - } - } - - (void)pt; - - return Tensor<1,dim>(); - } - - virtual types::boundary_id - get_reaction_boundary_id_for_output() const override - { - return 5; - } - - virtual std::vector - get_dirichlet_load(const types::boundary_id &boundary_id, - const int &direction) const override - { - std::vector displ_incr(dim,0.0); - - if ( (boundary_id == 5) && (direction == 2) ) - { - const double final_displ = this->parameters.load; - const double current_time = this->time.get_current(); - const double final_time = this->time.get_end(); - const double delta_time = this->time.get_delta_t(); - const double num_cycles = 3.0; - double current_displ = 0.0; - double previous_displ = 0.0; - - if (this->parameters.num_cycle_sets == 1) - { - current_displ = final_displ/2.0 * (1.0 - std::sin(numbers::PI * (2.0*num_cycles*current_time/final_time + 0.5))); - previous_displ = final_displ/2.0 * (1.0 - std::sin(numbers::PI * (2.0*num_cycles*(current_time-delta_time)/final_time + 0.5))); - } - else - { - if ( current_time <= (final_time*1.0/3.0) ) - { - current_displ = final_displ/2.0 * (1.0 - std::sin(numbers::PI * - (2.0*num_cycles*current_time/(final_time*1.0/3.0) + 0.5))); - previous_displ = final_displ/2.0 * (1.0 - std::sin(numbers::PI * - (2.0*num_cycles*(current_time-delta_time)/(final_time*1.0/3.0) + 0.5))); - } - else - { - current_displ = final_displ * (1.0 - std::sin(numbers::PI * - (2.0*num_cycles*current_time / (final_time*2.0/3.0) - - (num_cycles - 0.5) ))); - previous_displ = final_displ * (1.0 - std::sin(numbers::PI * - (2.0*num_cycles*(current_time-delta_time) / (final_time*2.0/3.0) - - (num_cycles - 0.5)))); - } - } - displ_incr[2] = current_displ - previous_displ; - } - return displ_incr; - } - }; - - //@sect4{Derived class: No lateral or vertical displacement in loading surface} - template - class BrainBudday2017CubeShearFullyFixed - : public BrainBudday2017BaseCube - { - public: - BrainBudday2017CubeShearFullyFixed (const Parameters::AllParameters ¶meters) - : BrainBudday2017BaseCube (parameters) - {} - - virtual ~BrainBudday2017CubeShearFullyFixed () {} - - private: - virtual void - define_tracked_vertices(std::vector > &tracked_vertices) override - { - tracked_vertices[0][0] = 0.75*this->parameters.scale; - tracked_vertices[0][1] = 0.5*this->parameters.scale; - tracked_vertices[0][2] = 0.0*this->parameters.scale; - - tracked_vertices[1][0] = 0.25*this->parameters.scale; - tracked_vertices[1][1] = 0.5*this->parameters.scale; - tracked_vertices[1][2] = 0.0*this->parameters.scale; - } - - virtual void - make_dirichlet_constraints(AffineConstraints &constraints) override - { - if (this->time.get_timestep() < 2) - { - VectorTools::interpolate_boundary_values(this->dof_handler_ref, - 100, - Functions::ConstantFunction(this->parameters.drained_pressure,this->n_components), - constraints, - (this->fe.component_mask(this->pressure))); - } - else - { - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 100, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->pressure))); - } - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 5, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->x_displacement) | - this->fe.component_mask(this->y_displacement) | - this->fe.component_mask(this->z_displacement) )); - - - if (this->parameters.load_type == "displacement") - { - const std::vector value = get_dirichlet_load(4,0); - FEValuesExtractors::Scalar direction; - direction = this->x_displacement; - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 4, - Functions::ConstantFunction(value[0],this->n_components), - constraints, - this->fe.component_mask(direction)); - - VectorTools::interpolate_boundary_values( this->dof_handler_ref, - 4, - Functions::ZeroFunction(this->n_components), - constraints, - (this->fe.component_mask(this->y_displacement) | - this->fe.component_mask(this->z_displacement) )); - } - } - - virtual Tensor<1,dim> - get_neumann_traction (const types::boundary_id &boundary_id, - const Point &pt, - const Tensor<1,dim> &N) const override - { - if (this->parameters.load_type == "pressure") - { - if (boundary_id == 4) - { - const double final_load = this->parameters.load; - const double current_time = this->time.get_current(); - const double final_time = this->time.get_end(); - const double num_cycles = 3.0; - const Tensor<1,3> axis ({0.0,1.0,0.0}); - const double angle = numbers::PI; - static const Tensor< 2, dim, double> R(Physics::Transformations::Rotations::rotation_matrix_3d(axis,angle)); - - return (final_load * (std::sin(2.0*(numbers::PI)*num_cycles*current_time/final_time)) * (R * N)); - } - } - - (void)pt; - - return Tensor<1,dim>(); - } - - virtual types::boundary_id - get_reaction_boundary_id_for_output() const override - { - return 4; - } - - virtual std::vector - get_dirichlet_load(const types::boundary_id &boundary_id, - const int &direction) const override - { - std::vector displ_incr (dim, 0.0); - - if ( (boundary_id == 4) && (direction == 0) ) - { - const double final_displ = this->parameters.load; - const double current_time = this->time.get_current(); - const double final_time = this->time.get_end(); - const double delta_time = this->time.get_delta_t(); - const double num_cycles = 3.0; - double current_displ = 0.0; - double previous_displ = 0.0; - - if (this->parameters.num_cycle_sets == 1) - { - current_displ = final_displ * (std::sin(2.0*(numbers::PI)*num_cycles*current_time/final_time)); - previous_displ = final_displ * (std::sin(2.0*(numbers::PI)*num_cycles*(current_time-delta_time)/final_time)); - } - else - { - AssertThrow(false, ExcMessage("Problem type not defined. Budday shear experiments implemented only for one set of cycles.")); - } - displ_incr[0] = current_displ - previous_displ; - } - return displ_incr; - } - }; - -} - -// @sect3{Main function} -// Lastly we provide the main driver function which is similar to the other tutorials. -int main (int argc, char *argv[]) -{ - using namespace dealii; - using namespace NonLinearPoroViscoElasticity; - - const unsigned int n_tbb_processes = 1; - Utilities::MPI::MPI_InitFinalize mpi_initialization(argc, argv, n_tbb_processes); - - try - { - Parameters::AllParameters parameters ("parameters.prm"); - if (parameters.geom_type == "Ehlers_tube_step_load") - { - VerificationEhlers1999StepLoad<3> solid_3d(parameters); - solid_3d.run(); - } - else if (parameters.geom_type == "Ehlers_tube_increase_load") - { - VerificationEhlers1999IncreaseLoad<3> solid_3d(parameters); - solid_3d.run(); - } - else if (parameters.geom_type == "Ehlers_cube_consolidation") - { - VerificationEhlers1999CubeConsolidation<3> solid_3d(parameters); - solid_3d.run(); - } - else if (parameters.geom_type == "Franceschini_consolidation") - { - Franceschini2006Consolidation<3> solid_3d(parameters); - solid_3d.run(); - } - else if (parameters.geom_type == "Budday_cube_tension_compression") - { - BrainBudday2017CubeTensionCompression<3> solid_3d(parameters); - solid_3d.run(); - } - else if (parameters.geom_type == "Budday_cube_tension_compression_fully_fixed") - { - BrainBudday2017CubeTensionCompressionFullyFixed<3> solid_3d(parameters); - solid_3d.run(); - } - else if (parameters.geom_type == "Budday_cube_shear_fully_fixed") - { - BrainBudday2017CubeShearFullyFixed<3> solid_3d(parameters); - solid_3d.run(); - } - else - { - AssertThrow(false, ExcMessage("Problem type not defined. Current setting: " + parameters.geom_type)); - } - - } - catch (std::exception &exc) - { - if (Utilities::MPI::this_mpi_process(MPI_COMM_WORLD) == 0) - { - std::cerr << std::endl << std::endl - << "----------------------------------------------------" - << std::endl; - std::cerr << "Exception on processing: " << std::endl << exc.what() - << std::endl << "Aborting!" << std::endl - << "----------------------------------------------------" - << std::endl; - - return 1; - } - } - catch (...) - { - if (Utilities::MPI::this_mpi_process(MPI_COMM_WORLD) == 0) - { - std::cerr << std::endl << std::endl - << "----------------------------------------------------" - << std::endl; - std::cerr << "Unknown exception!" << std::endl << "Aborting!" - << std::endl - << "----------------------------------------------------" - << std::endl; - return 1; - } - } - return 0; -} +/* --------------------------------------------------------------------- + * + * Copyright (C) 2010 - 2020 by the deal.II authors and + * Ester Comellas and Jean-Paul Pelteret + * + * This file is part of the deal.II library. + * + * The deal.II library is free software; you can use it, redistribute + * it, and/or modify it under the terms of the GNU Lesser General + * Public License as published by the Free Software Foundation; either + * version 2.1 of the License, or (at your option) any later version. + * The full text of the license can be found in the file LICENSE at + * the top level of the deal.II distribution. + * + * --------------------------------------------------------------------- + */ + +/* Authors: Ester Comellas and Jean-Paul Pelteret, + * University of Erlangen-Nuremberg, 2018 + */ + +// We start by including all the necessary deal.II header files and some C++ +// related ones. They have been discussed in detail in previous tutorial +// programs, so you need only refer to past tutorials for details. + +#include +#include +#include +#include +#include +#include +#include +#include +#include +#include + +#include + +#include + +#include +#include +#include + +#include +#include +#include +#include +#include +#include +#include +#include + +#include +#include +#include +#include +#include + +#include +#include +#include +#include +#include +#include + +#include +#include +#include +#include +#include +#include +#include +#include + +#include +#include + +#include +#include +#include +#include +#include + +#include +#include +#include + +#include +#include +#include +#include + + +// We create a namespace for everything that relates to +// the nonlinear poro-viscoelastic formulation, +// and import all the deal.II function and class names into it: +namespace NonLinearPoroViscoElasticity +{ + using namespace dealii; + +// @sect3{Run-time parameters} +// +// Set up a ParameterHandler object to read in the parameter choices at run-time +// introduced by the user through the file "parameters.prm" + namespace Parameters + { +// @sect4{Finite Element system} +// Here we specify the polynomial order used to approximate the solution, +// both for the displacements and pressure unknowns. +// The quadrature order should be adjusted accordingly. + struct FESystem + { + unsigned int poly_degree_displ; + unsigned int poly_degree_pore; + unsigned int quad_order; + + static void + declare_parameters(ParameterHandler &prm); + + void + parse_parameters(ParameterHandler &prm); + }; + + void FESystem::declare_parameters(ParameterHandler &prm) + { + prm.enter_subsection("Finite element system"); + { + prm.declare_entry("Polynomial degree displ", "2", + Patterns::Integer(0), + "Displacement system polynomial order"); + + prm.declare_entry("Polynomial degree pore", "1", + Patterns::Integer(0), + "Pore pressure system polynomial order"); + + prm.declare_entry("Quadrature order", "3", + Patterns::Integer(0), + "Gauss quadrature order"); + } + prm.leave_subsection(); + } + + void FESystem::parse_parameters(ParameterHandler &prm) + { + prm.enter_subsection("Finite element system"); + { + poly_degree_displ = prm.get_integer("Polynomial degree displ"); + poly_degree_pore = prm.get_integer("Polynomial degree pore"); + quad_order = prm.get_integer("Quadrature order"); + } + prm.leave_subsection(); + } + +// @sect4{Geometry} +// These parameters are related to the geometry definition and mesh generation. +// We select the type of problem to solve and introduce the desired load values. + struct Geometry + { + std::string geom_type; + unsigned int global_refinement; + double scale; + std::string load_type; + double load; + unsigned int num_cycle_sets; + double fluid_flow; + double drained_pressure; + + static void + declare_parameters(ParameterHandler &prm); + + void + parse_parameters(ParameterHandler &prm); + }; + + void Geometry::declare_parameters(ParameterHandler &prm) + { + prm.enter_subsection("Geometry"); + { + prm.declare_entry("Geometry type", "Ehlers_tube_step_load", + Patterns::Selection("Ehlers_tube_step_load" + "|Ehlers_tube_increase_load" + "|Ehlers_cube_consolidation" + "|Franceschini_consolidation" + "|Budday_cube_tension_compression" + "|Budday_cube_tension_compression_fully_fixed" + "|Budday_cube_shear_fully_fixed"), + "Type of geometry used. " + "For Ehlers verification examples see Ehlers and Eipper (1999). " + "For Franceschini brain consolidation see Franceschini et al. (2006)" + "For Budday brain examples see Budday et al. (2017)"); + + prm.declare_entry("Global refinement", "1", + Patterns::Integer(0), + "Global refinement level"); + + prm.declare_entry("Grid scale", "1.0", + Patterns::Double(0.0), + "Global grid scaling factor"); + + prm.declare_entry("Load type", "pressure", + Patterns::Selection("pressure|displacement|none"), + "Type of loading"); + + prm.declare_entry("Load value", "-7.5e+6", + Patterns::Double(), + "Loading value"); + + prm.declare_entry("Number of cycle sets", "1", + Patterns::Integer(1,2), + "Number of times each set of 3 cycles is repeated, only for " + "Budday_cube_tension_compression and Budday_cube_tension_compression_fully_fixed. " + "Load value is doubled in second set, load rate is kept constant." + "Final time indicates end of second cycle set."); + + prm.declare_entry("Fluid flow value", "0.0", + Patterns::Double(), + "Prescribed fluid flow. Not implemented in any example yet."); + + prm.declare_entry("Drained pressure", "0.0", + Patterns::Double(), + "Increase of pressure value at drained boundary w.r.t the atmospheric pressure."); + } + prm.leave_subsection(); + } + + void Geometry::parse_parameters(ParameterHandler &prm) + { + prm.enter_subsection("Geometry"); + { + geom_type = prm.get("Geometry type"); + global_refinement = prm.get_integer("Global refinement"); + scale = prm.get_double("Grid scale"); + load_type = prm.get("Load type"); + load = prm.get_double("Load value"); + num_cycle_sets = prm.get_integer("Number of cycle sets"); + fluid_flow = prm.get_double("Fluid flow value"); + drained_pressure = prm.get_double("Drained pressure"); + } + prm.leave_subsection(); + } + +// @sect4{Materials} + +// Here we select the type of material for the solid component +// and define the corresponding material parameters. +// Then we define he fluid data, including the type of +// seepage velocity definition to use. + struct Materials + { + std::string mat_type; + double lambda; + double mu; + double mu1_infty; + double mu2_infty; + double mu3_infty; + double alpha1_infty; + double alpha2_infty; + double alpha3_infty; + double mu1_mode_1; + double mu2_mode_1; + double mu3_mode_1; + double alpha1_mode_1; + double alpha2_mode_1; + double alpha3_mode_1; + double viscosity_mode_1; + std::string fluid_type; + double solid_vol_frac; + double kappa_darcy; + double init_intrinsic_perm; + double viscosity_FR; + double init_darcy_coef; + double weight_FR; + bool gravity_term; + int gravity_direction; + double gravity_value; + double density_FR; + double density_SR; + enum SymmetricTensorEigenvectorMethod eigen_solver; + + static void + declare_parameters(ParameterHandler &prm); + + void + parse_parameters(ParameterHandler &prm); + }; + + void Materials::declare_parameters(ParameterHandler &prm) + { + prm.enter_subsection("Material properties"); + { + prm.declare_entry("material", "Neo-Hooke", + Patterns::Selection("Neo-Hooke|Ogden|visco-Ogden"), + "Type of material used in the problem"); + + prm.declare_entry("lambda", "8.375e6", + Patterns::Double(0,1e100), + "First Lamé parameter for extension function related to compactation point in solid material [Pa]."); + + prm.declare_entry("shear modulus", "5.583e6", + Patterns::Double(0,1e100), + "shear modulus for Neo-Hooke materials [Pa]."); + + prm.declare_entry("eigen solver", "QL Implicit Shifts", + Patterns::Selection("QL Implicit Shifts|Jacobi"), + "The type of eigen solver to be used for Ogden and visco-Ogden models."); + + prm.declare_entry("mu1", "0.0", + Patterns::Double(), + "Shear material parameter 'mu1' for Ogden material [Pa]."); + + prm.declare_entry("mu2", "0.0", + Patterns::Double(), + "Shear material parameter 'mu2' for Ogden material [Pa]."); + + prm.declare_entry("mu3", "0.0", + Patterns::Double(), + "Shear material parameter 'mu1' for Ogden material [Pa]."); + + prm.declare_entry("alpha1", "1.0", + Patterns::Double(), + "Stiffness material parameter 'alpha1' for Ogden material [-]."); + + prm.declare_entry("alpha2", "1.0", + Patterns::Double(), + "Stiffness material parameter 'alpha2' for Ogden material [-]."); + + prm.declare_entry("alpha3", "1.0", + Patterns::Double(), + "Stiffness material parameter 'alpha3' for Ogden material [-]."); + + prm.declare_entry("mu1_1", "0.0", + Patterns::Double(), + "Shear material parameter 'mu1' for first viscous mode in Ogden material [Pa]."); + + prm.declare_entry("mu2_1", "0.0", + Patterns::Double(), + "Shear material parameter 'mu2' for first viscous mode in Ogden material [Pa]."); + + prm.declare_entry("mu3_1", "0.0", + Patterns::Double(), + "Shear material parameter 'mu1' for first viscous mode in Ogden material [Pa]."); + + prm.declare_entry("alpha1_1", "1.0", + Patterns::Double(), + "Stiffness material parameter 'alpha1' for first viscous mode in Ogden material [-]."); + + prm.declare_entry("alpha2_1", "1.0", + Patterns::Double(), + "Stiffness material parameter 'alpha2' for first viscous mode in Ogden material [-]."); + + prm.declare_entry("alpha3_1", "1.0", + Patterns::Double(), + "Stiffness material parameter 'alpha3' for first viscous mode in Ogden material [-]."); + + prm.declare_entry("viscosity_1", "1e-10", + Patterns::Double(1e-10,1e100), + "Deformation-independent viscosity parameter 'eta_1' for first viscous mode in Ogden material [-]."); + + prm.declare_entry("seepage definition", "Ehlers", + Patterns::Selection("Markert|Ehlers"), + "Type of formulation used to define the seepage velocity in the problem. " + "Choose between Markert formulation of deformation-dependent intrinsic permeability " + "and Ehlers formulation of deformation-dependent Darcy flow coefficient."); + + prm.declare_entry("initial solid volume fraction", "0.67", + Patterns::Double(0.001,0.999), + "Initial porosity (solid volume fraction, 0 < n_0s < 1)"); + + prm.declare_entry("kappa", "0.0", + Patterns::Double(0,100), + "Deformation-dependency control parameter for specific permeability (kappa >= 0)"); + + prm.declare_entry("initial intrinsic permeability", "0.0", + Patterns::Double(0,1e100), + "Initial intrinsic permeability parameter [m^2] (isotropic permeability). To be used with Markert formulation."); + + prm.declare_entry("fluid viscosity", "0.0", + Patterns::Double(0, 1e100), + "Effective shear viscosity parameter of the fluid [Pa·s, (N·s)/m^2]. To be used with Markert formulation."); + + prm.declare_entry("initial Darcy coefficient", "1.0e-4", + Patterns::Double(0,1e100), + "Initial Darcy flow coefficient [m/s] (isotropic permeability). To be used with Ehlers formulation."); + + prm.declare_entry("fluid weight", "1.0e4", + Patterns::Double(0, 1e100), + "Effective weight of the fluid [N/m^3]. To be used with Ehlers formulation."); + + prm.declare_entry("gravity term", "false", + Patterns::Bool(), + "Gravity term considered (true) or neglected (false)"); + + prm.declare_entry("fluid density", "1.0", + Patterns::Double(0,1e100), + "Real (or effective) density of the fluid"); + + prm.declare_entry("solid density", "1.0", + Patterns::Double(0,1e100), + "Real (or effective) density of the solid"); + + prm.declare_entry("gravity direction", "2", + Patterns::Integer(0,2), + "Direction of gravity (unit vector 0 for x, 1 for y, 2 for z)"); + + prm.declare_entry("gravity value", "-9.81", + Patterns::Double(), + "Value of gravity (be careful to have consistent units!)"); + } + prm.leave_subsection(); + } + + void Materials::parse_parameters(ParameterHandler &prm) + { + prm.enter_subsection("Material properties"); + { + //Solid + mat_type = prm.get("material"); + lambda = prm.get_double("lambda"); + mu = prm.get_double("shear modulus"); + mu1_infty = prm.get_double("mu1"); + mu2_infty = prm.get_double("mu2"); + mu3_infty = prm.get_double("mu3"); + alpha1_infty = prm.get_double("alpha1"); + alpha2_infty = prm.get_double("alpha2"); + alpha3_infty = prm.get_double("alpha3"); + mu1_mode_1 = prm.get_double("mu1_1"); + mu2_mode_1 = prm.get_double("mu2_1"); + mu3_mode_1 = prm.get_double("mu3_1"); + alpha1_mode_1 = prm.get_double("alpha1_1"); + alpha2_mode_1 = prm.get_double("alpha2_1"); + alpha3_mode_1 = prm.get_double("alpha3_1"); + viscosity_mode_1 = prm.get_double("viscosity_1"); + //Fluid + fluid_type = prm.get("seepage definition"); + solid_vol_frac = prm.get_double("initial solid volume fraction"); + kappa_darcy = prm.get_double("kappa"); + init_intrinsic_perm = prm.get_double("initial intrinsic permeability"); + viscosity_FR = prm.get_double("fluid viscosity"); + init_darcy_coef = prm.get_double("initial Darcy coefficient"); + weight_FR = prm.get_double("fluid weight"); + //Gravity effects + gravity_term = prm.get_bool("gravity term"); + density_FR = prm.get_double("fluid density"); + density_SR = prm.get_double("solid density"); + gravity_direction = prm.get_integer("gravity direction"); + gravity_value = prm.get_double("gravity value"); + + if ( (fluid_type == "Markert") && ((init_intrinsic_perm == 0.0) || (viscosity_FR == 0.0)) ) + AssertThrow(false, ExcMessage("Markert seepage velocity formulation requires the definition of " + "'initial intrinsic permeability' and 'fluid viscosity' greater than 0.0.")); + + if ( (fluid_type == "Ehlers") && ((init_darcy_coef == 0.0) || (weight_FR == 0.0)) ) + AssertThrow(false, ExcMessage("Ehler seepage velocity formulation requires the definition of " + "'initial Darcy coefficient' and 'fluid weight' greater than 0.0.")); + + const std::string eigen_solver_type = prm.get("eigen solver"); + if (eigen_solver_type == "QL Implicit Shifts") + eigen_solver = SymmetricTensorEigenvectorMethod::ql_implicit_shifts; + else if (eigen_solver_type == "Jacobi") + eigen_solver = SymmetricTensorEigenvectorMethod::jacobi; + else + { + AssertThrow(false, ExcMessage("Unknown eigen solver selected.")); + } + } + prm.leave_subsection(); + } + +// @sect4{Nonlinear solver} + +// We now define the tolerances and the maximum number of iterations for the +// Newton-Raphson scheme used to solve the nonlinear system of governing equations. + struct NonlinearSolver + { + unsigned int max_iterations_NR; + double tol_f; + double tol_u; + double tol_p_fluid; + + static void + declare_parameters(ParameterHandler &prm); + + void + parse_parameters(ParameterHandler &prm); + }; + + void NonlinearSolver::declare_parameters(ParameterHandler &prm) + { + prm.enter_subsection("Nonlinear solver"); + { + prm.declare_entry("Max iterations Newton-Raphson", "15", + Patterns::Integer(0), + "Number of Newton-Raphson iterations allowed"); + + prm.declare_entry("Tolerance force", "1.0e-8", + Patterns::Double(0.0), + "Force residual tolerance"); + + prm.declare_entry("Tolerance displacement", "1.0e-6", + Patterns::Double(0.0), + "Displacement error tolerance"); + + prm.declare_entry("Tolerance pore pressure", "1.0e-6", + Patterns::Double(0.0), + "Pore pressure error tolerance"); + } + prm.leave_subsection(); + } + + void NonlinearSolver::parse_parameters(ParameterHandler &prm) + { + prm.enter_subsection("Nonlinear solver"); + { + max_iterations_NR = prm.get_integer("Max iterations Newton-Raphson"); + tol_f = prm.get_double("Tolerance force"); + tol_u = prm.get_double("Tolerance displacement"); + tol_p_fluid = prm.get_double("Tolerance pore pressure"); + } + prm.leave_subsection(); + } + +// @sect4{Time} +// Here we set the timestep size $ \varDelta t $ and the simulation end-time. + struct Time + { + double end_time; + double delta_t; + static void + declare_parameters(ParameterHandler &prm); + + void + parse_parameters(ParameterHandler &prm); + }; + + void Time::declare_parameters(ParameterHandler &prm) + { + prm.enter_subsection("Time"); + { + prm.declare_entry("End time", "10.0", + Patterns::Double(), + "End time"); + + prm.declare_entry("Time step size", "0.002", + Patterns::Double(1.0e-6), + "Time step size. The value must be larger than the displacement error tolerance defined."); + } + prm.leave_subsection(); + } + + void Time::parse_parameters(ParameterHandler &prm) + { + prm.enter_subsection("Time"); + { + end_time = prm.get_double("End time"); + delta_t = prm.get_double("Time step size"); + } + prm.leave_subsection(); + } + + +// @sect4{Output} +// We can choose the frequency of the data for the output files. + struct OutputParam + { + + std::string outfiles_requested; + unsigned int timestep_output; + std::string outtype; + + static void + declare_parameters(ParameterHandler &prm); + + void + parse_parameters(ParameterHandler &prm); + }; + + void OutputParam::declare_parameters(ParameterHandler &prm) + { + prm.enter_subsection("Output parameters"); + { + prm.declare_entry("Output files", "true", + Patterns::Selection("true|false"), + "Paraview output files to generate."); + prm.declare_entry("Time step number output", "1", + Patterns::Integer(0), + "Output data for time steps multiple of the given " + "integer value."); + prm.declare_entry("Averaged results", "nodes", + Patterns::Selection("elements|nodes"), + "Output data associated with integration point values" + " averaged on elements or on nodes."); + } + prm.leave_subsection(); + } + + void OutputParam::parse_parameters(ParameterHandler &prm) + { + prm.enter_subsection("Output parameters"); + { + outfiles_requested = prm.get("Output files"); + timestep_output = prm.get_integer("Time step number output"); + outtype = prm.get("Averaged results"); + } + prm.leave_subsection(); + } + +// @sect4{All parameters} +// We finally consolidate all of the above structures into a single container that holds all the run-time selections. + struct AllParameters : public FESystem, + public Geometry, + public Materials, + public NonlinearSolver, + public Time, + public OutputParam + { + AllParameters(const std::string &input_file); + + static void + declare_parameters(ParameterHandler &prm); + + void + parse_parameters(ParameterHandler &prm); + }; + + AllParameters::AllParameters(const std::string &input_file) + { + ParameterHandler prm; + declare_parameters(prm); + prm.parse_input(input_file); + parse_parameters(prm); + } + + void AllParameters::declare_parameters(ParameterHandler &prm) + { + FESystem::declare_parameters(prm); + Geometry::declare_parameters(prm); + Materials::declare_parameters(prm); + NonlinearSolver::declare_parameters(prm); + Time::declare_parameters(prm); + OutputParam::declare_parameters(prm); + } + + void AllParameters::parse_parameters(ParameterHandler &prm) + { + FESystem::parse_parameters(prm); + Geometry::parse_parameters(prm); + Materials::parse_parameters(prm); + NonlinearSolver::parse_parameters(prm); + Time::parse_parameters(prm); + OutputParam::parse_parameters(prm); + } + } + +// @sect3{Time class} +// A simple class to store time data. +// For simplicity we assume a constant time step size. + class Time + { + public: + Time (const double time_end, + const double delta_t) + : + timestep(0), + time_current(0.0), + time_end(time_end), + delta_t(delta_t) + {} + + virtual ~Time() + {} + + double get_current() const + { + return time_current; + } + double get_end() const + { + return time_end; + } + double get_delta_t() const + { + return delta_t; + } + unsigned int get_timestep() const + { + return timestep; + } + void increment_time () + { + time_current += delta_t; + ++timestep; + } + + private: + unsigned int timestep; + double time_current; + double time_end; + const double delta_t; + }; + +// @sect3{Constitutive equation for the solid component of the biphasic material} + +//@sect4{Base class: generic hyperelastic material} +// The ``extra" Kirchhoff stress in the solid component is the sum of isochoric +// and a volumetric part. +// $\mathbf{\tau} = \mathbf{\tau}_E^{(\bullet)} + \mathbf{\tau}^{\textrm{vol}}$ +// The deviatoric part changes depending on the type of material model selected: +// Neo-Hooken hyperelasticity, Ogden hyperelasticiy, +// or a single-mode finite viscoelasticity based on the Ogden hyperelastic model. +// In this base class we declare it as a virtual function, +// and it will be defined for each model type in the corresponding derived class. +// We define here the volumetric component, which depends on the +// extension function $U(J_S)$ selected, and in this case is the same for all models. +// We use the function proposed by +// Ehlers & Eipper 1999 doi:10.1023/A:1006565509095 +// We also define some public functions to access and update the internal variables. + template > + class Material_Hyperelastic + { + public: + Material_Hyperelastic(const Parameters::AllParameters ¶meters, + const Time &time) + : + n_OS (parameters.solid_vol_frac), + lambda (parameters.lambda), + time(time), + det_F (1.0), + det_F_converged (1.0), + eigen_solver (parameters.eigen_solver) + {} + ~Material_Hyperelastic() + {} + + SymmetricTensor<2, dim, NumberType> + get_tau_E(const Tensor<2,dim, NumberType> &F) const + { + return ( get_tau_E_base(F) + get_tau_E_ext_func(F) ); + } + + SymmetricTensor<2, dim, NumberType> + get_Cauchy_E(const Tensor<2, dim, NumberType> &F) const + { + const NumberType det_F = determinant(F); + Assert(det_F > 0, ExcInternalError()); + return get_tau_E(F)*NumberType(1/det_F); + } + + double + get_converged_det_F() const + { + return det_F_converged; + } + + virtual void + update_end_timestep() + { + det_F_converged = det_F; + } + + virtual void + update_internal_equilibrium( const Tensor<2, dim, NumberType> &F ) + { + det_F = Tensor<0,dim,double>(determinant(F)); + } + + virtual double + get_viscous_dissipation( ) const = 0; + + const double n_OS; + const double lambda; + const Time &time; + double det_F; + double det_F_converged; + const enum SymmetricTensorEigenvectorMethod eigen_solver; + + protected: + SymmetricTensor<2, dim, NumberType> + get_tau_E_ext_func(const Tensor<2,dim, NumberType> &F) const + { + const NumberType det_F = determinant(F); + Assert(det_F > 0, ExcInternalError()); + + static const SymmetricTensor< 2, dim, double> + I (Physics::Elasticity::StandardTensors::I); + return ( NumberType(lambda * (1.0-n_OS)*(1.0-n_OS) + * (det_F/(1.0-n_OS) - det_F/(det_F-n_OS))) * I ); + } + + virtual SymmetricTensor<2, dim, NumberType> + get_tau_E_base(const Tensor<2,dim, NumberType> &F) const = 0; + }; + +//@sect4{Derived class: Neo-Hookean hyperelastic material} + template > + class NeoHooke : public Material_Hyperelastic < dim, NumberType > + { + public: + NeoHooke(const Parameters::AllParameters ¶meters, + const Time &time) + : + Material_Hyperelastic< dim, NumberType > (parameters,time), + mu(parameters.mu) + {} + virtual ~NeoHooke() + {} + + double + get_viscous_dissipation() const override + { + return 0.0; + } + + protected: + const double mu; + + SymmetricTensor<2, dim, NumberType> + get_tau_E_base(const Tensor<2,dim, NumberType> &F) const override + { + static const SymmetricTensor< 2, dim, double> + I (Physics::Elasticity::StandardTensors::I); + + const bool use_standard_model = true; + + if (use_standard_model) + { + // Standard Neo-Hooke + return ( mu * ( symmetrize(F * transpose(F)) - I ) ); + } + else + { + // Neo-Hooke in terms of principal stretches + const SymmetricTensor<2, dim, NumberType> + B = symmetrize(F * transpose(F)); + const std::array< std::pair< NumberType, Tensor< 1, dim, NumberType > >, dim > + eigen_B = eigenvectors(B, this->eigen_solver); + + SymmetricTensor<2, dim, NumberType> B_ev; + for (unsigned int d=0; d > + class Ogden : public Material_Hyperelastic < dim, NumberType > + { + public: + Ogden(const Parameters::AllParameters ¶meters, + const Time &time) + : + Material_Hyperelastic< dim, NumberType > (parameters,time), + mu({parameters.mu1_infty, + parameters.mu2_infty, + parameters.mu3_infty}), + alpha({parameters.alpha1_infty, + parameters.alpha2_infty, + parameters.alpha3_infty}) + {} + virtual ~Ogden() + {} + + double + get_viscous_dissipation() const override + { + return 0.0; + } + + protected: + std::vector mu; + std::vector alpha; + + SymmetricTensor<2, dim, NumberType> + get_tau_E_base(const Tensor<2,dim, NumberType> &F) const override + { + const SymmetricTensor<2, dim, NumberType> + B = symmetrize(F * transpose(F)); + + const std::array< std::pair< NumberType, Tensor< 1, dim, NumberType > >, dim > + eigen_B = eigenvectors(B, this->eigen_solver); + + SymmetricTensor<2, dim, NumberType> tau; + static const SymmetricTensor< 2, dim, double> + I (Physics::Elasticity::StandardTensors::I); + + for (unsigned int i = 0; i < 3; ++i) + { + for (unsigned int A = 0; A < dim; ++A) + { + SymmetricTensor<2, dim, NumberType> tau_aux1 = symmetrize( + outer_product(eigen_B[A].second,eigen_B[A].second)); + tau_aux1 *= mu[i]*std::pow(eigen_B[A].first, (alpha[i]/2.) ); + tau += tau_aux1; + } + SymmetricTensor<2, dim, NumberType> tau_aux2 (I); + tau_aux2 *= mu[i]; + tau -= tau_aux2; + } + return tau; + } + }; + +//@sect4{Derived class: Single-mode Ogden viscoelastic material} +// We use the finite viscoelastic model described in +// Reese & Govindjee (1998) doi:10.1016/S0020-7683(97)00217-5 +// The algorithm for the implicit exponential time integration is given in +// Budday et al. (2017) doi: 10.1016/j.actbio.2017.06.024 + template > + class visco_Ogden : public Material_Hyperelastic < dim, NumberType > + { + public: + visco_Ogden(const Parameters::AllParameters ¶meters, + const Time &time) + : + Material_Hyperelastic< dim, NumberType > (parameters,time), + mu_infty({parameters.mu1_infty, + parameters.mu2_infty, + parameters.mu3_infty}), + alpha_infty({parameters.alpha1_infty, + parameters.alpha2_infty, + parameters.alpha3_infty}), + mu_mode_1({parameters.mu1_mode_1, + parameters.mu2_mode_1, + parameters.mu3_mode_1}), + alpha_mode_1({parameters.alpha1_mode_1, + parameters.alpha2_mode_1, + parameters.alpha3_mode_1}), + viscosity_mode_1(parameters.viscosity_mode_1), + Cinv_v_1(Physics::Elasticity::StandardTensors::I), + Cinv_v_1_converged(Physics::Elasticity::StandardTensors::I) + {} + virtual ~visco_Ogden() + {} + + void + update_internal_equilibrium( const Tensor<2, dim, NumberType> &F ) override + { + Material_Hyperelastic < dim, NumberType >::update_internal_equilibrium(F); + + this->Cinv_v_1 = this->Cinv_v_1_converged; + SymmetricTensor<2, dim, NumberType> B_e_1_tr = symmetrize(F * this->Cinv_v_1 * transpose(F)); + + const std::array< std::pair< NumberType, Tensor< 1, dim, NumberType > >, dim > + eigen_B_e_1_tr = eigenvectors(B_e_1_tr, this->eigen_solver); + + Tensor< 1, dim, NumberType > lambdas_e_1_tr; + Tensor< 1, dim, NumberType > epsilon_e_1_tr; + for (int a = 0; a < dim; ++a) + { + lambdas_e_1_tr[a] = std::sqrt(eigen_B_e_1_tr[a].first); + epsilon_e_1_tr[a] = std::log(lambdas_e_1_tr[a]); + } + + const double tolerance = 1e-8; + double residual_check = tolerance*10.0; + Tensor< 1, dim, NumberType > residual; + Tensor< 2, dim, NumberType > tangent; + static const SymmetricTensor< 2, dim, double> I(Physics::Elasticity::StandardTensors::I); + NumberType J_e_1 = std::sqrt(determinant(B_e_1_tr)); + + std::vector lambdas_e_1_iso(dim); + SymmetricTensor<2, dim, NumberType> B_e_1; + int iteration = 0; + + Tensor< 1, dim, NumberType > lambdas_e_1; + Tensor< 1, dim, NumberType > epsilon_e_1; + epsilon_e_1 = epsilon_e_1_tr; + + while(residual_check > tolerance) + { + NumberType aux_J_e_1 = 1.0; + for (unsigned int a = 0; a < dim; ++a) + { + lambdas_e_1[a] = std::exp(epsilon_e_1[a]); + aux_J_e_1 *= lambdas_e_1[a]; + } + + J_e_1 = aux_J_e_1; + + for (unsigned int a = 0; a < dim; ++a) + lambdas_e_1_iso[a] = lambdas_e_1[a]*std::pow(J_e_1,-1.0/dim); + + for (unsigned int a = 0; a < dim; ++a) + { + residual[a] = get_beta_mode_1(lambdas_e_1_iso, a); + residual[a] *= this->time.get_delta_t()/(2.0*viscosity_mode_1); + residual[a] += epsilon_e_1[a]; + residual[a] -= epsilon_e_1_tr[a]; + + for (unsigned int b = 0; b < dim; ++b) + { + tangent[a][b] = get_gamma_mode_1(lambdas_e_1_iso, a, b); + tangent[a][b] *= this->time.get_delta_t()/(2.0*viscosity_mode_1); + tangent[a][b] += I[a][b]; + } + + } + epsilon_e_1 -= invert(tangent)*residual; + + residual_check = 0.0; + for (unsigned int a = 0; a < dim; ++a) + { + if ( std::abs(residual[a]) > residual_check) + residual_check = std::abs(Tensor<0,dim,double>(residual[a])); + } + iteration += 1; + if (iteration > 15 ) + AssertThrow(false, ExcMessage("No convergence in local Newton iteration for the " + "viscoelastic exponential time integration algorithm.")); + } + + NumberType aux_J_e_1 = 1.0; + for (unsigned int a = 0; a < dim; ++a) + { + lambdas_e_1[a] = std::exp(epsilon_e_1[a]); + aux_J_e_1 *= lambdas_e_1[a]; + } + J_e_1 = aux_J_e_1; + + for (unsigned int a = 0; a < dim; ++a) + lambdas_e_1_iso[a] = lambdas_e_1[a]*std::pow(J_e_1,-1.0/dim); + + for (unsigned int a = 0; a < dim; ++a) + { + SymmetricTensor<2, dim, NumberType> + B_e_1_aux = symmetrize(outer_product(eigen_B_e_1_tr[a].second,eigen_B_e_1_tr[a].second)); + B_e_1_aux *= lambdas_e_1[a] * lambdas_e_1[a]; + B_e_1 += B_e_1_aux; + } + + Tensor<2, dim, NumberType>Cinv_v_1_AD = symmetrize(invert(F) * B_e_1 * invert(transpose(F))); + + this->tau_neq_1 = 0; + for (unsigned int a = 0; a < dim; ++a) + { + SymmetricTensor<2, dim, NumberType> + tau_neq_1_aux = symmetrize(outer_product(eigen_B_e_1_tr[a].second,eigen_B_e_1_tr[a].second)); + tau_neq_1_aux *= get_beta_mode_1(lambdas_e_1_iso, a); + this->tau_neq_1 += tau_neq_1_aux; + } + + // Store history + for (unsigned int a = 0; a < dim; ++a) + for (unsigned int b = 0; b < dim; ++b) + this->Cinv_v_1[a][b]= Tensor<0,dim,double>(Cinv_v_1_AD[a][b]); + } + + void update_end_timestep() override + { + Material_Hyperelastic < dim, NumberType >::update_end_timestep(); + this->Cinv_v_1_converged = this->Cinv_v_1; + } + + double get_viscous_dissipation() const override + { + NumberType dissipation_term = get_tau_E_neq() * get_tau_E_neq(); //Double contract the two SymmetricTensor + dissipation_term /= (2*viscosity_mode_1); + + return dissipation_term.val(); + } + + protected: + std::vector mu_infty; + std::vector alpha_infty; + std::vector mu_mode_1; + std::vector alpha_mode_1; + double viscosity_mode_1; + SymmetricTensor<2, dim, double> Cinv_v_1; + SymmetricTensor<2, dim, double> Cinv_v_1_converged; + SymmetricTensor<2, dim, NumberType> tau_neq_1; + + SymmetricTensor<2, dim, NumberType> + get_tau_E_base(const Tensor<2,dim, NumberType> &F) const override + { + return ( get_tau_E_neq() + get_tau_E_eq(F) ); + } + + SymmetricTensor<2, dim, NumberType> + get_tau_E_eq(const Tensor<2,dim, NumberType> &F) const + { + const SymmetricTensor<2, dim, NumberType> B = symmetrize(F * transpose(F)); + + std::array< std::pair< NumberType, Tensor< 1, dim, NumberType > >, dim > eigen_B; + eigen_B = eigenvectors(B, this->eigen_solver); + + SymmetricTensor<2, dim, NumberType> tau; + static const SymmetricTensor< 2, dim, double> + I (Physics::Elasticity::StandardTensors::I); + + for (unsigned int i = 0; i < 3; ++i) + { + for (unsigned int A = 0; A < dim; ++A) + { + SymmetricTensor<2, dim, NumberType> tau_aux1 = symmetrize( + outer_product(eigen_B[A].second,eigen_B[A].second)); + tau_aux1 *= mu_infty[i]*std::pow(eigen_B[A].first, (alpha_infty[i]/2.) ); + tau += tau_aux1; + } + SymmetricTensor<2, dim, NumberType> tau_aux2 (I); + tau_aux2 *= mu_infty[i]; + tau -= tau_aux2; + } + return tau; + } + + SymmetricTensor<2, dim, NumberType> + get_tau_E_neq() const + { + return tau_neq_1; + } + + NumberType + get_beta_mode_1(std::vector< NumberType > &lambda, const int &A) const + { + NumberType beta = 0.0; + + for (unsigned int i = 0; i < 3; ++i) //3rd-order Ogden model + { + + NumberType aux = 0.0; + for (int p = 0; p < dim; ++p) + aux += std::pow(lambda[p],alpha_mode_1[i]); + + aux *= -1.0/dim; + aux += std::pow(lambda[A], alpha_mode_1[i]); + aux *= mu_mode_1[i]; + + beta += aux; + } + return beta; + } + + NumberType + get_gamma_mode_1(std::vector< NumberType > &lambda, + const int &A, + const int &B ) const + { + NumberType gamma = 0.0; + + if (A==B) + { + for (unsigned int i = 0; i < 3; ++i) + { + NumberType aux = 0.0; + for (int p = 0; p < dim; ++p) + aux += std::pow(lambda[p],alpha_mode_1[i]); + + aux *= 1.0/(dim*dim); + aux += 1.0/dim * std::pow(lambda[A], alpha_mode_1[i]); + aux *= mu_mode_1[i]*alpha_mode_1[i]; + + gamma += aux; + } + } + else + { + for (unsigned int i = 0; i < 3; ++i) + { + NumberType aux = 0.0; + for (int p = 0; p < dim; ++p) + aux += std::pow(lambda[p],alpha_mode_1[i]); + + aux *= 1.0/(dim*dim); + aux -= 1.0/dim * std::pow(lambda[A], alpha_mode_1[i]); + aux -= 1.0/dim * std::pow(lambda[B], alpha_mode_1[i]); + aux *= mu_mode_1[i]*alpha_mode_1[i]; + + gamma += aux; + } + } + + return gamma; + } + }; + + +// @sect3{Constitutive equation for the fluid component of the biphasic material} +// We consider two slightly different definitions to define the seepage velocity with a Darcy-like law. +// Ehlers & Eipper 1999, doi:10.1023/A:1006565509095 +// Markert 2007, doi:10.1007/s11242-007-9107-6 +// The selection of one or another is made by the user via the parameters file. + template > + class Material_Darcy_Fluid + { + public: + Material_Darcy_Fluid(const Parameters::AllParameters ¶meters) + : + fluid_type(parameters.fluid_type), + n_OS(parameters.solid_vol_frac), + initial_intrinsic_permeability(parameters.init_intrinsic_perm), + viscosity_FR(parameters.viscosity_FR), + initial_darcy_coefficient(parameters.init_darcy_coef), + weight_FR(parameters.weight_FR), + kappa_darcy(parameters.kappa_darcy), + gravity_term(parameters.gravity_term), + density_FR(parameters.density_FR), + gravity_direction(parameters.gravity_direction), + gravity_value(parameters.gravity_value) + { + Assert(kappa_darcy >= 0, ExcInternalError()); + } + ~Material_Darcy_Fluid() + {} + + Tensor<1, dim, NumberType> get_seepage_velocity_current + (const Tensor<2,dim, NumberType> &F, + const Tensor<1,dim, NumberType> &grad_p_fluid) const + { + const NumberType det_F = determinant(F); + Assert(det_F > 0.0, ExcInternalError()); + + Tensor<2, dim, NumberType> permeability_term; + + if (fluid_type == "Markert") + permeability_term = get_instrinsic_permeability_current(F) / viscosity_FR; + + else if (fluid_type == "Ehlers") + permeability_term = get_darcy_flow_current(F) / weight_FR; + + else + AssertThrow(false, ExcMessage( + "Material_Darcy_Fluid --> Only Markert " + "and Ehlers formulations have been implemented.")); + + return ( -1.0 * permeability_term * det_F + * (grad_p_fluid - get_body_force_FR_current()) ); + } + + double get_porous_dissipation(const Tensor<2,dim, NumberType> &F, + const Tensor<1,dim, NumberType> &grad_p_fluid) const + { + NumberType dissipation_term; + Tensor<1, dim, NumberType> seepage_velocity; + Tensor<2, dim, NumberType> permeability_term; + + const NumberType det_F = determinant(F); + Assert(det_F > 0.0, ExcInternalError()); + + if (fluid_type == "Markert") + { + permeability_term = get_instrinsic_permeability_current(F) / viscosity_FR; + seepage_velocity = get_seepage_velocity_current(F,grad_p_fluid); + } + else if (fluid_type == "Ehlers") + { + permeability_term = get_darcy_flow_current(F) / weight_FR; + seepage_velocity = get_seepage_velocity_current(F,grad_p_fluid); + } + else + AssertThrow(false, ExcMessage( + "Material_Darcy_Fluid --> Only Markert and Ehlers " + "formulations have been implemented.")); + + dissipation_term = ( invert(permeability_term) * seepage_velocity ) * seepage_velocity; + dissipation_term *= 1.0/(det_F*det_F); + return Tensor<0,dim,double>(dissipation_term); + } + + protected: + const std::string fluid_type; + const double n_OS; + const double initial_intrinsic_permeability; + const double viscosity_FR; + const double initial_darcy_coefficient; + const double weight_FR; + const double kappa_darcy; + const bool gravity_term; + const double density_FR; + const int gravity_direction; + const double gravity_value; + + Tensor<2, dim, NumberType> + get_instrinsic_permeability_current(const Tensor<2,dim, NumberType> &F) const + { + static const SymmetricTensor< 2, dim, double> + I (Physics::Elasticity::StandardTensors::I); + const Tensor<2, dim, NumberType> initial_instrinsic_permeability_tensor + = Tensor<2, dim, double>(initial_intrinsic_permeability * I); + + const NumberType det_F = determinant(F); + Assert(det_F > 0.0, ExcInternalError()); + + const NumberType fraction = (det_F - n_OS)/(1 - n_OS); + return ( NumberType (std::pow(fraction, kappa_darcy)) + * initial_instrinsic_permeability_tensor ); + } + + Tensor<2, dim, NumberType> + get_darcy_flow_current(const Tensor<2,dim, NumberType> &F) const + { + static const SymmetricTensor< 2, dim, double> + I (Physics::Elasticity::StandardTensors::I); + const Tensor<2, dim, NumberType> initial_darcy_flow_tensor + = Tensor<2, dim, double>(initial_darcy_coefficient * I); + + const NumberType det_F = determinant(F); + Assert(det_F > 0.0, ExcInternalError()); + + const NumberType fraction = (1.0 - (n_OS / det_F) )/(1.0 - n_OS); + return ( NumberType (std::pow(fraction, kappa_darcy)) + * initial_darcy_flow_tensor); + } + + Tensor<1, dim, NumberType> + get_body_force_FR_current() const + { + Tensor<1, dim, NumberType> body_force_FR_current; + + if (gravity_term == true) + { + Tensor<1, dim, NumberType> gravity_vector; + gravity_vector[gravity_direction] = gravity_value; + body_force_FR_current = density_FR * gravity_vector; + } + return body_force_FR_current; + } + }; + +// @sect3{Quadrature point history} +// As seen in step-18, the PointHistory class offers a method +// for storing data at the quadrature points. Here each quadrature point +// holds a pointer to a material description. Thus, different material models +// can be used in different regions of the domain. Among other data, we +// choose to store the ``extra" Kirchhoff stress $\boldsymbol{\tau}_E$ and +// the dissipation values $\mathcal{D}_p$ and $\mathcal{D}_v$. + template > //double> + class PointHistory + { + public: + PointHistory() + {} + + virtual ~PointHistory() + {} + + void setup_lqp (const Parameters::AllParameters ¶meters, + const Time &time) + { + if (parameters.mat_type == "Neo-Hooke") + solid_material.reset(new NeoHooke(parameters,time)); + else if (parameters.mat_type == "Ogden") + solid_material.reset(new Ogden(parameters,time)); + else if (parameters.mat_type == "visco-Ogden") + solid_material.reset(new visco_Ogden(parameters,time)); + else + Assert (false, ExcMessage("Material type not implemented")); + + fluid_material.reset(new Material_Darcy_Fluid(parameters)); + } + + SymmetricTensor<2, dim, NumberType> + get_tau_E(const Tensor<2, dim, NumberType> &F) const + { + return solid_material->get_tau_E(F); + } + + SymmetricTensor<2, dim, NumberType> + get_Cauchy_E(const Tensor<2, dim, NumberType> &F) const + { + return solid_material->get_Cauchy_E(F); + } + + double + get_converged_det_F() const + { + return solid_material->get_converged_det_F(); + } + + void + update_end_timestep() + { + solid_material->update_end_timestep(); + } + + void + update_internal_equilibrium(const Tensor<2, dim, NumberType> &F ) + { + solid_material->update_internal_equilibrium(F); + } + + double + get_viscous_dissipation() const + { + return solid_material->get_viscous_dissipation(); + } + + Tensor<1,dim, NumberType> + get_seepage_velocity_current (const Tensor<2,dim, NumberType> &F, + const Tensor<1,dim, NumberType> &grad_p_fluid) const + { + return fluid_material->get_seepage_velocity_current(F, grad_p_fluid); + } + + double + get_porous_dissipation(const Tensor<2,dim, NumberType> &F, + const Tensor<1,dim, NumberType> &grad_p_fluid) const + { + return fluid_material->get_porous_dissipation(F, grad_p_fluid); + } + + Tensor<1, dim, NumberType> + get_overall_body_force (const Tensor<2,dim, NumberType> &F, + const Parameters::AllParameters ¶meters) const + { + Tensor<1, dim, NumberType> body_force; + + if (parameters.gravity_term == true) + { + const NumberType det_F_AD = determinant(F); + Assert(det_F_AD > 0.0, ExcInternalError()); + + const NumberType overall_density_ref + = parameters.density_SR * parameters.solid_vol_frac + + parameters.density_FR + * (det_F_AD - parameters.solid_vol_frac); + + Tensor<1, dim, NumberType> gravity_vector; + gravity_vector[parameters.gravity_direction] = parameters.gravity_value; + body_force = overall_density_ref * gravity_vector; + } + + return body_force; + } + private: + std::shared_ptr< Material_Hyperelastic > solid_material; + std::shared_ptr< Material_Darcy_Fluid > fluid_material; + }; + +// @sect3{Nonlinear poro-viscoelastic solid} +// The Solid class is the central class as it represents the problem at hand: +// the nonlinear poro-viscoelastic solid + template + class Solid + { + public: + Solid(const Parameters::AllParameters ¶meters); + virtual ~Solid(); + void run(); + + protected: + using ADNumberType = Sacado::Fad::DFad; + + std::ofstream outfile; + std::ofstream pointfile; + + struct PerTaskData_ASM; + template struct ScratchData_ASM; + + //Generate mesh + virtual void make_grid() = 0; + + //Define points for post-processing + virtual void define_tracked_vertices(std::vector > &tracked_vertices) = 0; + + //Set up the finite element system to be solved: + void system_setup(TrilinosWrappers::MPI::BlockVector &solution_delta_OUT); + + //Extract sub-blocks from the global matrix + void determine_component_extractors(); + + // Several functions to assemble the system and right hand side matrices using multithreading. + void assemble_system + (const TrilinosWrappers::MPI::BlockVector &solution_delta_OUT ); + void assemble_system_one_cell + (const typename DoFHandler::active_cell_iterator &cell, + ScratchData_ASM &scratch, + PerTaskData_ASM &data) const; + void copy_local_to_global_system(const PerTaskData_ASM &data); + + // Define boundary conditions + virtual void make_constraints(const int &it_nr); + virtual void make_dirichlet_constraints(AffineConstraints &constraints) = 0; + virtual Tensor<1,dim> get_neumann_traction + (const types::boundary_id &boundary_id, + const Point &pt, + const Tensor<1,dim> &N) const = 0; + virtual double get_prescribed_fluid_flow + (const types::boundary_id &boundary_id, + const Point &pt) const = 0; + virtual types::boundary_id + get_reaction_boundary_id_for_output () const = 0; + virtual std::pair + get_drained_boundary_id_for_output () const = 0; + virtual std::vector get_dirichlet_load + (const types::boundary_id &boundary_id, + const int &direction) const = 0; + + // Create and update the quadrature points. + void setup_qph(); + + //Solve non-linear system using a Newton-Raphson scheme + void solve_nonlinear_timestep(TrilinosWrappers::MPI::BlockVector &solution_delta_OUT); + + //Solve the linearized equations using a direct solver + void solve_linear_system ( TrilinosWrappers::MPI::BlockVector &newton_update_OUT); + + //Retrieve the solution + TrilinosWrappers::MPI::BlockVector + get_total_solution(const TrilinosWrappers::MPI::BlockVector &solution_delta_IN) const; + + // Store the converged values of the internal variables at the end of each timestep + void update_end_timestep(); + + //Post-processing and writing data to files + void output_results_to_vtu(const unsigned int timestep, + const double current_time, + TrilinosWrappers::MPI::BlockVector solution) const; + void output_results_to_plot(const unsigned int timestep, + const double current_time, + TrilinosWrappers::MPI::BlockVector solution, + std::vector > &tracked_vertices, + std::ofstream &pointfile) const; + + // Headers and footer for the output files + void print_console_file_header( std::ofstream &outfile) const; + void print_plot_file_header(std::vector > &tracked_vertices, + std::ofstream &pointfile) const; + void print_console_file_footer(std::ofstream &outfile) const; + void print_plot_file_footer( std::ofstream &pointfile) const; + + // For parallel communication + MPI_Comm mpi_communicator; + const unsigned int n_mpi_processes; + const unsigned int this_mpi_process; + mutable ConditionalOStream pcout; + + // A collection of the parameters used to describe the problem setup + const Parameters::AllParameters ¶meters; + + // Declare an instance of dealii Triangulation class (mesh) + parallel::shared::Triangulation triangulation; + + // Keep track of the current time and the time spent evaluating certain functions + Time time; + TimerOutput timerconsole; + TimerOutput timerfile; + + // A storage object for quadrature point information. + CellDataStorage::cell_iterator, PointHistory > quadrature_point_history; + + //Integers to store polynomial degree (needed for output) + const unsigned int degree_displ; + const unsigned int degree_pore; + + //Declare an instance of dealii FESystem class (finite element definition) + const FESystem fe; + + //Declare an instance of dealii DoFHandler class (assign DoFs to mesh) + DoFHandler dof_handler_ref; + + //Integer to store DoFs per element (this value will be used often) + const unsigned int dofs_per_cell; + + //Declare an instance of dealii Extractor objects used to retrieve information from the solution vectors + //We will use "u_fe" and "p_fluid_fe"as subscript in operator [] expressions on FEValues and FEFaceValues + //objects to extract the components of the displacement vector and fluid pressure, respectively. + const FEValuesExtractors::Vector u_fe; + const FEValuesExtractors::Scalar p_fluid_fe; + + // Description of how the block-system is arranged. There are 3 blocks: + // 0 - vector DOF displacements u + // 1 - scalar DOF fluid pressure p_fluid + static const unsigned int n_blocks = 2; + static const unsigned int n_components = dim+1; + static const unsigned int first_u_component = 0; + static const unsigned int p_fluid_component = dim; + + enum + { + u_block = 0, + p_fluid_block = 1 + }; + + // Extractors + const FEValuesExtractors::Scalar x_displacement; + const FEValuesExtractors::Scalar y_displacement; + const FEValuesExtractors::Scalar z_displacement; + const FEValuesExtractors::Scalar pressure; + + // Block data + std::vector block_component; + + // DoF index data + std::vector all_locally_owned_dofs; + IndexSet locally_owned_dofs; + IndexSet locally_relevant_dofs; + std::vector locally_owned_partitioning; + std::vector locally_relevant_partitioning; + + std::vector dofs_per_block; + std::vector element_indices_u; + std::vector element_indices_p_fluid; + + //Declare an instance of dealii QGauss class (The Gauss-Legendre family of quadrature rules for numerical integration) + //Gauss Points in element, with n quadrature points (in each space direction ) + const QGauss qf_cell; + //Gauss Points on element faces (used for definition of BCs) + const QGauss qf_face; + //Integer to store num GPs per element (this value will be used often) + const unsigned int n_q_points; + //Integer to store num GPs per face (this value will be used often) + const unsigned int n_q_points_f; + + //Declare an instance of dealii AffineConstraints class (linear constraints on DoFs due to hanging nodes or BCs) + AffineConstraints constraints; + + //Declare an instance of dealii classes necessary for FE system set-up and assembly + //Store elements of tangent matrix (indicated by SparsityPattern class) as sparse matrix (more efficient) + TrilinosWrappers::BlockSparseMatrix tangent_matrix; + TrilinosWrappers::BlockSparseMatrix tangent_matrix_preconditioner; + //Right hand side vector of forces + TrilinosWrappers::MPI::BlockVector system_rhs; + //Total displacement values + pressure (accumulated solution to FE system) + TrilinosWrappers::MPI::BlockVector solution_n; + + // Non-block system for the direct solver. We will copy the block system into these to solve the linearized system of equations. + TrilinosWrappers::SparseMatrix tangent_matrix_nb; + TrilinosWrappers::MPI::Vector system_rhs_nb; + + //We define variables to store norms and update norms and normalisation factors. + struct Errors + { + Errors() + : + norm(1.0), u(1.0), p_fluid(1.0) + {} + + void reset() + { + norm = 1.0; + u = 1.0; + p_fluid = 1.0; + } + void normalise(const Errors &rhs) + { + if (rhs.norm != 0.0) + norm /= rhs.norm; + if (rhs.u != 0.0) + u /= rhs.u; + if (rhs.p_fluid != 0.0) + p_fluid /= rhs.p_fluid; + } + + double norm, u, p_fluid; + }; + + //Declare several instances of the "Error" structure + Errors error_residual, error_residual_0, error_residual_norm, error_update, + error_update_0, error_update_norm; + + // Methods to calculate error measures + void get_error_residual(Errors &error_residual_OUT); + void get_error_update + (const TrilinosWrappers::MPI::BlockVector &newton_update_IN, + Errors &error_update_OUT); + + // Print information to screen + void print_conv_header(); + void print_conv_footer(); + +//NOTE: In all functions, we pass by reference (&), so these functions work on the original copy (not a clone copy), +// modifying the input variables inside the functions will change them outside the function. + }; + +// @sect3{Implementation of the Solid class} +// @sect4{Public interface} +// We initialise the Solid class using data extracted from the parameter file. + template + Solid::Solid(const Parameters::AllParameters ¶meters) + : + mpi_communicator(MPI_COMM_WORLD), + n_mpi_processes (Utilities::MPI::n_mpi_processes(mpi_communicator)), + this_mpi_process (Utilities::MPI::this_mpi_process(mpi_communicator)), + pcout(std::cout, this_mpi_process == 0), + parameters(parameters), + triangulation(mpi_communicator,Triangulation::maximum_smoothing), + time(parameters.end_time, parameters.delta_t), + timerconsole( mpi_communicator, + pcout, + TimerOutput::summary, + TimerOutput::wall_times), + timerfile( mpi_communicator, + outfile, + TimerOutput::summary, + TimerOutput::wall_times), + degree_displ(parameters.poly_degree_displ), + degree_pore(parameters.poly_degree_pore), + fe( FE_Q(parameters.poly_degree_displ), dim, + FE_Q(parameters.poly_degree_pore), 1 ), + dof_handler_ref(triangulation), + dofs_per_cell (fe.dofs_per_cell), + u_fe(first_u_component), + p_fluid_fe(p_fluid_component), + x_displacement(first_u_component), + y_displacement(first_u_component+1), + z_displacement(first_u_component+2), + pressure(p_fluid_component), + dofs_per_block(n_blocks), + qf_cell(parameters.quad_order), + qf_face(parameters.quad_order), + n_q_points (qf_cell.size()), + n_q_points_f (qf_face.size()) + { + Assert(dim==3, ExcMessage("This problem only works in 3 space dimensions.")); + determine_component_extractors(); + } + + //The class destructor simply clears the data held by the DOFHandler + template + Solid::~Solid() + { + dof_handler_ref.clear(); + } + +//Runs the 3D solid problem + template + void Solid::run() + { + //The current solution increment is defined as a block vector to reflect the structure + //of the PDE system, with multiple solution components + TrilinosWrappers::MPI::BlockVector solution_delta; + + //Open file + if (this_mpi_process == 0) + { + outfile.open("console-output.sol"); + print_console_file_header(outfile); + } + + //Generate mesh + make_grid(); + + //Assign DOFs and create the stiffness and right-hand-side force vector + system_setup(solution_delta); + + //Define points for post-processing + std::vector > tracked_vertices (2); + define_tracked_vertices(tracked_vertices); + std::vector> reaction_force; + + if (this_mpi_process == 0) + { + pointfile.open("data-for-gnuplot.sol"); + print_plot_file_header(tracked_vertices, pointfile); + } + + //Print results to output file + if (parameters.outfiles_requested == "true") + { + output_results_to_vtu(time.get_timestep(), + time.get_current(), + solution_n ); + } + + output_results_to_plot(time.get_timestep(), + time.get_current(), + solution_n, + tracked_vertices, + pointfile); + + //Increment time step (=load step) + //NOTE: In solving the quasi-static problem, the time becomes a loading parameter, + //i.e. we increase the loading linearly with time, making the two concepts interchangeable. + time.increment_time(); + + //Print information on screen + pcout << "\nSolver:"; + pcout << "\n CST = make constraints"; + pcout << "\n ASM_SYS = assemble system"; + pcout << "\n SLV = linear solver \n"; + + //Print information on file + outfile << "\nSolver:"; + outfile << "\n CST = make constraints"; + outfile << "\n ASM_SYS = assemble system"; + outfile << "\n SLV = linear solver \n"; + + while ( (time.get_end() - time.get_current()) > -1.0*parameters.tol_u ) + { + //Initialize the current solution increment to zero + solution_delta = 0.0; + + //Solve the non-linear system using a Newton-Rapshon scheme + solve_nonlinear_timestep(solution_delta); + + //Add the computed solution increment to total solution + solution_n += solution_delta; + + //Store the converged values of the internal variables + update_end_timestep(); + + //Output results + if (( (time.get_timestep()%parameters.timestep_output) == 0 ) + && (parameters.outfiles_requested == "true") ) + { + output_results_to_vtu(time.get_timestep(), + time.get_current(), + solution_n ); + } + + output_results_to_plot(time.get_timestep(), + time.get_current(), + solution_n, + tracked_vertices, + pointfile); + + //Increment the time step (=load step) + time.increment_time(); + } + + //Print the footers and close files + if (this_mpi_process == 0) + { + print_plot_file_footer(pointfile); + pointfile.close (); + print_console_file_footer(outfile); + + //NOTE: ideally, we should close the outfile here [ >> outfile.close (); ] + //But if we do, then the timer output will not be printed. That is why we leave it open. + } + } + +// @sect4{Private interface} +// We define the structures needed for parallelization with Threading Building Blocks (TBB) +// Tangent matrix and right-hand side force vector assembly structures. +// PerTaskData_ASM stores local contributions + template + struct Solid::PerTaskData_ASM + { + FullMatrix cell_matrix; + Vector cell_rhs; + std::vector local_dof_indices; + + PerTaskData_ASM(const unsigned int dofs_per_cell) + : + cell_matrix(dofs_per_cell, dofs_per_cell), + cell_rhs(dofs_per_cell), + local_dof_indices(dofs_per_cell) + {} + + void reset() + { + cell_matrix = 0.0; + cell_rhs = 0.0; + } + }; + + // ScratchData_ASM stores larger objects used during the assembly + template + template + struct Solid::ScratchData_ASM + { + const TrilinosWrappers::MPI::BlockVector &solution_total; + + //Integration helper + FEValues fe_values_ref; + FEFaceValues fe_face_values_ref; + + // Quadrature point solution + std::vector local_dof_values; + std::vector > solution_grads_u_total; + std::vector solution_values_p_fluid_total; + std::vector > solution_grads_p_fluid_total; + std::vector > solution_grads_face_p_fluid_total; + + //shape function values + std::vector>> Nx; + std::vector> Nx_p_fluid; + //shape function gradients + std::vector>> grad_Nx; + std::vector>> symm_grad_Nx; + std::vector>> grad_Nx_p_fluid; + + ScratchData_ASM(const FiniteElement &fe_cell, + const QGauss &qf_cell, const UpdateFlags uf_cell, + const QGauss & qf_face, const UpdateFlags uf_face, + const TrilinosWrappers::MPI::BlockVector &solution_total ) + : + solution_total (solution_total), + fe_values_ref(fe_cell, qf_cell, uf_cell), + fe_face_values_ref(fe_cell, qf_face, uf_face), + local_dof_values(fe_cell.dofs_per_cell), + solution_grads_u_total(qf_cell.size()), + solution_values_p_fluid_total(qf_cell.size()), + solution_grads_p_fluid_total(qf_cell.size()), + solution_grads_face_p_fluid_total(qf_face.size()), + Nx(qf_cell.size(), std::vector>(fe_cell.dofs_per_cell)), + Nx_p_fluid(qf_cell.size(), std::vector(fe_cell.dofs_per_cell)), + grad_Nx(qf_cell.size(), std::vector>(fe_cell.dofs_per_cell)), + symm_grad_Nx(qf_cell.size(), std::vector> (fe_cell.dofs_per_cell)), + grad_Nx_p_fluid(qf_cell.size(), std::vector>(fe_cell.dofs_per_cell)) + {} + + ScratchData_ASM(const ScratchData_ASM &rhs) + : + solution_total (rhs.solution_total), + fe_values_ref(rhs.fe_values_ref.get_fe(), + rhs.fe_values_ref.get_quadrature(), + rhs.fe_values_ref.get_update_flags()), + fe_face_values_ref(rhs.fe_face_values_ref.get_fe(), + rhs.fe_face_values_ref.get_quadrature(), + rhs.fe_face_values_ref.get_update_flags()), + local_dof_values(rhs.local_dof_values), + solution_grads_u_total(rhs.solution_grads_u_total), + solution_values_p_fluid_total(rhs.solution_values_p_fluid_total), + solution_grads_p_fluid_total(rhs.solution_grads_p_fluid_total), + solution_grads_face_p_fluid_total(rhs.solution_grads_face_p_fluid_total), + Nx(rhs.Nx), + Nx_p_fluid(rhs.Nx_p_fluid), + grad_Nx(rhs.grad_Nx), + symm_grad_Nx(rhs.symm_grad_Nx), + grad_Nx_p_fluid(rhs.grad_Nx_p_fluid) + {} + + void reset() + { + const unsigned int n_q_points = Nx_p_fluid.size(); + const unsigned int n_dofs_per_cell = Nx_p_fluid[0].size(); + + Assert(local_dof_values.size() == n_dofs_per_cell, ExcInternalError()); + + for (unsigned int k = 0; k < n_dofs_per_cell; ++k) + { + local_dof_values[k] = 0.0; + } + + Assert(solution_grads_u_total.size() == n_q_points, ExcInternalError()); + Assert(solution_values_p_fluid_total.size() == n_q_points, ExcInternalError()); + Assert(solution_grads_p_fluid_total.size() == n_q_points, ExcInternalError()); + + Assert(Nx.size() == n_q_points, ExcInternalError()); + Assert(grad_Nx.size() == n_q_points, ExcInternalError()); + Assert(symm_grad_Nx.size() == n_q_points, ExcInternalError()); + + for (unsigned int q_point = 0; q_point < n_q_points; ++q_point) + { + Assert( Nx[q_point].size() == n_dofs_per_cell, ExcInternalError()); + Assert( grad_Nx[q_point].size() == n_dofs_per_cell, ExcInternalError()); + Assert( symm_grad_Nx[q_point].size() == n_dofs_per_cell, ExcInternalError()); + + solution_grads_u_total[q_point] = 0.0; + solution_values_p_fluid_total[q_point] = 0.0; + solution_grads_p_fluid_total[q_point] = 0.0; + + for (unsigned int k = 0; k < n_dofs_per_cell; ++k) + { + Nx[q_point][k] = 0.0; + Nx_p_fluid[q_point][k] = 0.0; + grad_Nx[q_point][k] = 0.0; + symm_grad_Nx[q_point][k] = 0.0; + grad_Nx_p_fluid[q_point][k] = 0.0; + } + } + + const unsigned int n_f_q_points = solution_grads_face_p_fluid_total.size(); + Assert(solution_grads_face_p_fluid_total.size() == n_f_q_points, ExcInternalError()); + + for (unsigned int f_q_point = 0; f_q_point < n_f_q_points; ++f_q_point) + solution_grads_face_p_fluid_total[f_q_point] = 0.0; + } + }; + + //Define the boundary conditions on the mesh + template + void Solid::make_constraints(const int &it_nr_IN) + { + pcout << " CST " << std::flush; + outfile << " CST " << std::flush; + + if (it_nr_IN > 1) return; + + const bool apply_dirichlet_bc = (it_nr_IN == 0); + + if (apply_dirichlet_bc) + { + constraints.clear(); + make_dirichlet_constraints(constraints); + } + else + { + for (unsigned int i=0; i + void Solid::system_setup(TrilinosWrappers::MPI::BlockVector &solution_delta_OUT) + { + timerconsole.enter_subsection("Setup system"); + timerfile.enter_subsection("Setup system"); + + //Determine number of components per block + std::vector block_component(n_components, u_block); + block_component[p_fluid_component] = p_fluid_block; + + // The DOF handler is initialised and we renumber the grid in an efficient manner. + dof_handler_ref.distribute_dofs(fe); + DoFRenumbering::Cuthill_McKee(dof_handler_ref); + DoFRenumbering::component_wise(dof_handler_ref, block_component); + + // Count the number of DoFs in each block + dofs_per_block = DoFTools::count_dofs_per_fe_block(dof_handler_ref, block_component); + + // Setup the sparsity pattern and tangent matrix + all_locally_owned_dofs = DoFTools::locally_owned_dofs_per_subdomain (dof_handler_ref); + std::vector all_locally_relevant_dofs + = DoFTools::locally_relevant_dofs_per_subdomain (dof_handler_ref); + + locally_owned_dofs.clear(); + locally_owned_partitioning.clear(); + Assert(all_locally_owned_dofs.size() > this_mpi_process, ExcInternalError()); + locally_owned_dofs = all_locally_owned_dofs[this_mpi_process]; + + locally_relevant_dofs.clear(); + locally_relevant_partitioning.clear(); + Assert(all_locally_relevant_dofs.size() > this_mpi_process, ExcInternalError()); + locally_relevant_dofs = all_locally_relevant_dofs[this_mpi_process]; + + locally_owned_partitioning.reserve(n_blocks); + locally_relevant_partitioning.reserve(n_blocks); + + for (unsigned int b=0; b coupling(n_components, n_components); + for (unsigned int ii = 0; ii < n_components; ++ii) + for (unsigned int jj = 0; jj < n_components; ++jj) + + //Identify "zero" matrix components of FE-system (The two components do not couple) + if (((ii == p_fluid_component) && (jj < p_fluid_component)) + || ((ii < p_fluid_component) && (jj == p_fluid_component)) ) + coupling[ii][jj] = DoFTools::none; + + //The rest of components always couple + else + coupling[ii][jj] = DoFTools::always; + + TrilinosWrappers::BlockSparsityPattern bsp (locally_owned_partitioning, + mpi_communicator); + + DoFTools::make_sparsity_pattern (dof_handler_ref, bsp, constraints, + false, this_mpi_process); + bsp.compress(); + + //Reinitialize the (sparse) tangent matrix with the given sparsity pattern. + tangent_matrix.reinit (bsp); + + //Initialize the right hand side and solution vectors with number of DoFs + system_rhs.reinit(locally_owned_partitioning, mpi_communicator); + solution_n.reinit(locally_owned_partitioning, mpi_communicator); + solution_delta_OUT.reinit(locally_owned_partitioning, mpi_communicator); + + // Non-block system + TrilinosWrappers::SparsityPattern sp (locally_owned_dofs, + mpi_communicator); + DoFTools::make_sparsity_pattern (dof_handler_ref, sp, constraints, + false, this_mpi_process); + sp.compress(); + tangent_matrix_nb.reinit (sp); + system_rhs_nb.reinit(locally_owned_dofs, mpi_communicator); + + //Set up the quadrature point history + setup_qph(); + + timerconsole.leave_subsection(); + timerfile.leave_subsection(); + } + + //Component extractors: used to extract sub-blocks from the global matrix + //Description of which local element DOFs are attached to which block component + template + void Solid::determine_component_extractors() + { + element_indices_u.clear(); + element_indices_p_fluid.clear(); + + for (unsigned int k = 0; k < fe.dofs_per_cell; ++k) + { + const unsigned int k_group = fe.system_to_base_index(k).first.first; + if (k_group == u_block) + element_indices_u.push_back(k); + else if (k_group == p_fluid_block) + element_indices_p_fluid.push_back(k); + else + { + Assert(k_group <= p_fluid_block, ExcInternalError()); + } + } + } + + //Set-up quadrature point history (QPH) data objects + template + void Solid::setup_qph() + { + pcout << "\nSetting up quadrature point data..." << std::endl; + outfile << "\nSetting up quadrature point data..." << std::endl; + + //Create QPH data objects. + quadrature_point_history.initialize(triangulation.begin_active(), + triangulation.end(), n_q_points); + + //Setup the initial quadrature point data using the info stored in parameters + FilteredIterator::active_cell_iterator> + cell (IteratorFilters::LocallyOwnedCell(), + dof_handler_ref.begin_active()), + endc (IteratorFilters::LocallyOwnedCell(), + dof_handler_ref.end()); + for (; cell!=endc; ++cell) + { + Assert(cell->is_locally_owned(), ExcInternalError()); + Assert(cell->subdomain_id() == this_mpi_process, ExcInternalError()); + + const std::vector > > + lqph = quadrature_point_history.get_data(cell); + Assert(lqph.size() == n_q_points, ExcInternalError()); + + for (unsigned int q_point = 0; q_point < n_q_points; ++q_point) + lqph[q_point]->setup_lqp(parameters, time); + } + } + + //Solve the non-linear system using a Newton-Raphson scheme + template + void Solid::solve_nonlinear_timestep(TrilinosWrappers::MPI::BlockVector &solution_delta_OUT) + { + //Print the load step + pcout << std::endl + << "\nTimestep " + << time.get_timestep() + << " @ " + << time.get_current() + << "s" + << std::endl; + outfile << std::endl + << "\nTimestep " + << time.get_timestep() + << " @ " + << time.get_current() + << "s" + << std::endl; + + //Declare newton_update vector (solution of a Newton iteration), + //which must have as many positions as global DoFs. + TrilinosWrappers::MPI::BlockVector newton_update + (locally_owned_partitioning, mpi_communicator); + + //Reset the error storage objects + error_residual.reset(); + error_residual_0.reset(); + error_residual_norm.reset(); + error_update.reset(); + error_update_0.reset(); + error_update_norm.reset(); + + print_conv_header(); + + //Declare and initialize iterator for the Newton-Raphson algorithm steps + unsigned int newton_iteration = 0; + + //Iterate until error is below tolerance or max number iterations are reached + while(newton_iteration < parameters.max_iterations_NR) + { + pcout << " " << std::setw(2) << newton_iteration << " " << std::flush; + outfile << " " << std::setw(2) << newton_iteration << " " << std::flush; + + //Initialize global stiffness matrix and global force vector to zero + tangent_matrix = 0.0; + system_rhs = 0.0; + + tangent_matrix_nb = 0.0; + system_rhs_nb = 0.0; + + //Apply boundary conditions + make_constraints(newton_iteration); + assemble_system(solution_delta_OUT); + + //Compute the rhs residual (error between external and internal forces in FE system) + get_error_residual(error_residual); + + //error_residual in first iteration is stored to normalize posterior error measures + if (newton_iteration == 0) + error_residual_0 = error_residual; + + // Determine the normalised residual error + error_residual_norm = error_residual; + error_residual_norm.normalise(error_residual_0); + + //If both errors are below the tolerances, exit the loop. + // We need to check the residual vector directly for convergence + // in the load steps where no external forces or displacements are imposed. + if ( ((newton_iteration > 0) + && (error_update_norm.u <= parameters.tol_u) + && (error_update_norm.p_fluid <= parameters.tol_p_fluid) + && (error_residual_norm.u <= parameters.tol_f) + && (error_residual_norm.p_fluid <= parameters.tol_f)) + || ( (newton_iteration > 0) + && system_rhs.l2_norm() <= parameters.tol_f) ) + { + pcout << "\n ***** CONVERGED! ***** " + << system_rhs.l2_norm() << " " + << " " << error_residual_norm.norm + << " " << error_residual_norm.u + << " " << error_residual_norm.p_fluid + << " " << error_update_norm.norm + << " " << error_update_norm.u + << " " << error_update_norm.p_fluid + << " " << std::endl; + outfile << "\n ***** CONVERGED! ***** " + << system_rhs.l2_norm() << " " + << " " << error_residual_norm.norm + << " " << error_residual_norm.u + << " " << error_residual_norm.p_fluid + << " " << error_update_norm.norm + << " " << error_update_norm.u + << " " << error_update_norm.p_fluid + << " " << std::endl; + print_conv_footer(); + + break; + } + + //Solve the linearized system + solve_linear_system(newton_update); + constraints.distribute(newton_update); + + //Compute the displacement error + get_error_update(newton_update, error_update); + + //error_update in first iteration is stored to normalize posterior error measures + if (newton_iteration == 0) + error_update_0 = error_update; + + // Determine the normalised Newton update error + error_update_norm = error_update; + error_update_norm.normalise(error_update_0); + + // Determine the normalised residual error + error_residual_norm = error_residual; + error_residual_norm.normalise(error_residual_0); + + //Print error values + pcout << " | " << std::fixed << std::setprecision(3) + << std::setw(7) << std::scientific + << system_rhs.l2_norm() + << " " << error_residual_norm.norm + << " " << error_residual_norm.u + << " " << error_residual_norm.p_fluid + << " " << error_update_norm.norm + << " " << error_update_norm.u + << " " << error_update_norm.p_fluid + << " " << std::endl; + + outfile << " | " << std::fixed << std::setprecision(3) + << std::setw(7) << std::scientific + << system_rhs.l2_norm() + << " " << error_residual_norm.norm + << " " << error_residual_norm.u + << " " << error_residual_norm.p_fluid + << " " << error_update_norm.norm + << " " << error_update_norm.u + << " " << error_update_norm.p_fluid + << " " << std::endl; + + // Update + solution_delta_OUT += newton_update; + newton_update = 0.0; + newton_iteration++; + } + + //If maximum allowed number of iterations for Newton algorithm are reached, print non-convergence message and abort program + AssertThrow (newton_iteration < parameters.max_iterations_NR, ExcMessage("No convergence in nonlinear solver!")); + } + + //Prints the header for convergence info on console + template + void Solid::print_conv_header() + { + static const unsigned int l_width = 120; + + for (unsigned int i = 0; i < l_width; ++i) + { + pcout << "_"; + outfile << "_"; + } + + pcout << std::endl; + outfile << std::endl; + + pcout << "\n SOLVER STEP | SYS_RES " + << "RES_NORM RES_U RES_P " + << "NU_NORM NU_U NU_P " << std::endl; + outfile << "\n SOLVER STEP | SYS_RES " + << "RES_NORM RES_U RES_P " + << "NU_NORM NU_U NU_P " << std::endl; + + for (unsigned int i = 0; i < l_width; ++i) + { + pcout << "_"; + outfile << "_"; + } + pcout << std::endl << std::endl; + outfile << std::endl << std::endl; + } + + //Prints the footer for convergence info on console + template + void Solid::print_conv_footer() + { + static const unsigned int l_width = 120; + + for (unsigned int i = 0; i < l_width; ++i) + { + pcout << "_"; + outfile << "_"; + } + pcout << std::endl << std::endl; + outfile << std::endl << std::endl; + + pcout << "Relative errors:" << std::endl + << "Displacement: " + << error_update.u / error_update_0.u << std::endl + << "Force (displ): " + << error_residual.u / error_residual_0.u << std::endl + << "Pore pressure: " + << error_update.p_fluid / error_update_0.p_fluid << std::endl + << "Force (pore): " + << error_residual.p_fluid / error_residual_0.p_fluid << std::endl; + outfile << "Relative errors:" << std::endl + << "Displacement: " + << error_update.u / error_update_0.u << std::endl + << "Force (displ): " + << error_residual.u / error_residual_0.u << std::endl + << "Pore pressure: " + << error_update.p_fluid / error_update_0.p_fluid << std::endl + << "Force (pore): " + << error_residual.p_fluid / error_residual_0.p_fluid << std::endl; + } + + //Determine the true residual error for the problem + template + void Solid::get_error_residual(Errors &error_residual_OUT) + { + TrilinosWrappers::MPI::BlockVector error_res(system_rhs); + constraints.set_zero(error_res); + + error_residual_OUT.norm = error_res.l2_norm(); + error_residual_OUT.u = error_res.block(u_block).l2_norm(); + error_residual_OUT.p_fluid = error_res.block(p_fluid_block).l2_norm(); + } + + //Determine the true Newton update error for the problem + template + void Solid::get_error_update + (const TrilinosWrappers::MPI::BlockVector &newton_update_IN, + Errors &error_update_OUT) + { + TrilinosWrappers::MPI::BlockVector error_ud(newton_update_IN); + constraints.set_zero(error_ud); + + error_update_OUT.norm = error_ud.l2_norm(); + error_update_OUT.u = error_ud.block(u_block).l2_norm(); + error_update_OUT.p_fluid = error_ud.block(p_fluid_block).l2_norm(); + } + + //Compute the total solution, which is valid at any Newton step. This is required as, to reduce + //computational error, the total solution is only updated at the end of the timestep. + template + TrilinosWrappers::MPI::BlockVector + Solid::get_total_solution(const TrilinosWrappers::MPI::BlockVector &solution_delta_IN) const + { + // Cell interpolation -> Ghosted vector + TrilinosWrappers::MPI::BlockVector + solution_total (locally_owned_partitioning, + locally_relevant_partitioning, + mpi_communicator, + /*vector_writable = */ false); + TrilinosWrappers::MPI::BlockVector tmp (solution_total); + solution_total = solution_n; + tmp = solution_delta_IN; + solution_total += tmp; + return solution_total; + } + + //Compute elemental stiffness tensor and right-hand side force vector, and assemble into global ones + template + void Solid::assemble_system( const TrilinosWrappers::MPI::BlockVector &solution_delta ) + { + timerconsole.enter_subsection("Assemble system"); + timerfile.enter_subsection("Assemble system"); + pcout << " ASM_SYS " << std::flush; + outfile << " ASM_SYS " << std::flush; + + const TrilinosWrappers::MPI::BlockVector solution_total(get_total_solution(solution_delta)); + + //Info given to FEValues and FEFaceValues constructors, to indicate which data will be needed at each element. + const UpdateFlags uf_cell(update_values | + update_gradients | + update_JxW_values); + const UpdateFlags uf_face(update_values | + update_gradients | + update_normal_vectors | + update_quadrature_points | + update_JxW_values ); + + //Setup a copy of the data structures required for the process and pass them, along with the + //memory addresses of the assembly functions to the WorkStream object for processing + PerTaskData_ASM per_task_data(dofs_per_cell); + ScratchData_ASM scratch_data(fe, qf_cell, uf_cell, + qf_face, uf_face, + solution_total); + + FilteredIterator::active_cell_iterator> + cell (IteratorFilters::LocallyOwnedCell(), + dof_handler_ref.begin_active()), + endc (IteratorFilters::LocallyOwnedCell(), + dof_handler_ref.end()); + for (; cell != endc; ++cell) + { + Assert(cell->is_locally_owned(), ExcInternalError()); + Assert(cell->subdomain_id() == this_mpi_process, ExcInternalError()); + + assemble_system_one_cell(cell, scratch_data, per_task_data); + copy_local_to_global_system(per_task_data); + } + tangent_matrix.compress(VectorOperation::add); + system_rhs.compress(VectorOperation::add); + + tangent_matrix_nb.compress(VectorOperation::add); + system_rhs_nb.compress(VectorOperation::add); + + timerconsole.leave_subsection(); + timerfile.leave_subsection(); + } + + //Add the local elemental contribution to the global stiffness tensor + // We do it twice, for the block and the non-block systems + template + void Solid::copy_local_to_global_system (const PerTaskData_ASM &data) + { + constraints.distribute_local_to_global(data.cell_matrix, + data.cell_rhs, + data.local_dof_indices, + tangent_matrix, + system_rhs); + + constraints.distribute_local_to_global(data.cell_matrix, + data.cell_rhs, + data.local_dof_indices, + tangent_matrix_nb, + system_rhs_nb); + } + + //Compute stiffness matrix and corresponding rhs for one element + template + void Solid::assemble_system_one_cell + (const typename DoFHandler::active_cell_iterator &cell, + ScratchData_ASM &scratch, + PerTaskData_ASM &data) const + { + Assert(cell->is_locally_owned(), ExcInternalError()); + + data.reset(); + scratch.reset(); + scratch.fe_values_ref.reinit(cell); + cell->get_dof_indices(data.local_dof_indices); + + // Setup automatic differentiation + for (unsigned int k = 0; k < dofs_per_cell; ++k) + { + // Initialise the dofs for the cell using the current solution. + scratch.local_dof_values[k] = scratch.solution_total[data.local_dof_indices[k]]; + // Mark this cell DoF as an independent variable + scratch.local_dof_values[k].diff(k, dofs_per_cell); + } + + // Update the quadrature point solution + // Compute the values and gradients of the solution in terms of the AD variables + for (unsigned int q = 0; q < n_q_points; ++q) + { + for (unsigned int k = 0; k < dofs_per_cell; ++k) + { + const unsigned int k_group = fe.system_to_base_index(k).first.first; + if (k_group == u_block) + { + const Tensor<2, dim> Grad_Nx_u = + scratch.fe_values_ref[u_fe].gradient(k, q); + for (unsigned int dd = 0; dd < dim; ++dd) + { + for (unsigned int ee = 0; ee < dim; ++ee) + { + scratch.solution_grads_u_total[q][dd][ee] + += scratch.local_dof_values[k] * Grad_Nx_u[dd][ee]; + } + } + } + else if (k_group == p_fluid_block) + { + const double Nx_p = scratch.fe_values_ref[p_fluid_fe].value(k, q); + const Tensor<1, dim> Grad_Nx_p = + scratch.fe_values_ref[p_fluid_fe].gradient(k, q); + + scratch.solution_values_p_fluid_total[q] + += scratch.local_dof_values[k] * Nx_p; + for (unsigned int dd = 0; dd < dim; ++dd) + { + scratch.solution_grads_p_fluid_total[q][dd] + += scratch.local_dof_values[k] * Grad_Nx_p[dd]; + } + } + else + Assert(k_group <= p_fluid_block, ExcInternalError()); + } + } + + //Set up pointer "lgph" to the PointHistory object of this element + const std::vector > > + lqph = quadrature_point_history.get_data(cell); + Assert(lqph.size() == n_q_points, ExcInternalError()); + + + //Precalculate the element shape function values and gradients + for (unsigned int q_point = 0; q_point < n_q_points; ++q_point) + { + Tensor<2, dim, ADNumberType> F_AD = scratch.solution_grads_u_total[q_point]; + F_AD += Tensor<2, dim, double>(Physics::Elasticity::StandardTensors::I); + Assert(determinant(F_AD) > 0, ExcMessage("Invalid deformation map")); + const Tensor<2, dim, ADNumberType> F_inv_AD = invert(F_AD); + + for (unsigned int i = 0; i < dofs_per_cell; ++i) + { + const unsigned int i_group = fe.system_to_base_index(i).first.first; + + if (i_group == u_block) + { + scratch.Nx[q_point][i] = + scratch.fe_values_ref[u_fe].value(i, q_point); + scratch.grad_Nx[q_point][i] = + scratch.fe_values_ref[u_fe].gradient(i, q_point)*F_inv_AD; + scratch.symm_grad_Nx[q_point][i] = + symmetrize(scratch.grad_Nx[q_point][i]); + } + else if (i_group == p_fluid_block) + { + scratch.Nx_p_fluid[q_point][i] = + scratch.fe_values_ref[p_fluid_fe].value(i, q_point); + scratch.grad_Nx_p_fluid[q_point][i] = + scratch.fe_values_ref[p_fluid_fe].gradient(i, q_point)*F_inv_AD; + } + else + Assert(i_group <= p_fluid_block, ExcInternalError()); + } + } + + //Assemble the stiffness matrix and rhs vector + std::vector residual_ad (dofs_per_cell, ADNumberType(0.0)); + for (unsigned int q_point = 0; q_point < n_q_points; ++q_point) + { + Tensor<2, dim, ADNumberType> F_AD = scratch.solution_grads_u_total[q_point]; + F_AD += Tensor<2, dim,double>(Physics::Elasticity::StandardTensors::I); + const ADNumberType det_F_AD = determinant(F_AD); + + Assert(det_F_AD > 0, ExcInternalError()); + const Tensor<2, dim, ADNumberType> F_inv_AD = invert(F_AD); //inverse of def. gradient tensor + + const ADNumberType p_fluid = scratch.solution_values_p_fluid_total[q_point]; + + { + PointHistory *lqph_q_point_nc = + const_cast*>(lqph[q_point].get()); + lqph_q_point_nc->update_internal_equilibrium(F_AD); + } + + //Get some info from constitutive model of solid + static const SymmetricTensor< 2, dim, double> + I (Physics::Elasticity::StandardTensors::I); + const SymmetricTensor<2, dim, ADNumberType> + tau_E = lqph[q_point]->get_tau_E(F_AD); + SymmetricTensor<2, dim, ADNumberType> tau_fluid_vol (I); + tau_fluid_vol *= -1.0 * p_fluid * det_F_AD; + + //Get some info from constitutive model of fluid + const ADNumberType det_F_aux = lqph[q_point]->get_converged_det_F(); + const double det_F_converged = Tensor<0,dim,double>(det_F_aux); //Needs to be double, not AD number + const Tensor<1, dim, ADNumberType> overall_body_force + = lqph[q_point]->get_overall_body_force(F_AD, parameters); + + // Define some aliases to make the assembly process easier to follow + const std::vector> &Nu = scratch.Nx[q_point]; + const std::vector> + &symm_grad_Nu = scratch.symm_grad_Nx[q_point]; + const std::vector &Np = scratch.Nx_p_fluid[q_point]; + const std::vector > &grad_Np + = scratch.grad_Nx_p_fluid[q_point]; + const Tensor<1, dim, ADNumberType> grad_p + = scratch.solution_grads_p_fluid_total[q_point]*F_inv_AD; + const double JxW = scratch.fe_values_ref.JxW(q_point); + + for (unsigned int i = 0; i < dofs_per_cell; ++i) + { + const unsigned int i_group = fe.system_to_base_index(i).first.first; + + if (i_group == u_block) + { + residual_ad[i] += symm_grad_Nu[i] * ( tau_E + tau_fluid_vol ) * JxW; + residual_ad[i] -= Nu[i] * overall_body_force * JxW; + } + else if (i_group == p_fluid_block) + { + const Tensor<1, dim, ADNumberType> seepage_vel_current + = lqph[q_point]->get_seepage_velocity_current(F_AD, grad_p); + residual_ad[i] += Np[i] * (det_F_AD - det_F_converged) * JxW; + residual_ad[i] -= time.get_delta_t() * grad_Np[i] + * seepage_vel_current * JxW; + } + else + Assert(i_group <= p_fluid_block, ExcInternalError()); + } + } + + // Assemble the Neumann contribution (external force contribution). + for (unsigned int face = 0; face < GeometryInfo::faces_per_cell; ++face) //Loop over faces in element + { + if (cell->face(face)->at_boundary() == true) + { + scratch.fe_face_values_ref.reinit(cell, face); + + for (unsigned int f_q_point = 0; f_q_point < n_q_points_f; ++f_q_point) + { + const Tensor<1, dim> &N + = scratch.fe_face_values_ref.normal_vector(f_q_point); + const Point &pt + = scratch.fe_face_values_ref.quadrature_point(f_q_point); + const Tensor<1, dim> traction + = get_neumann_traction(cell->face(face)->boundary_id(), pt, N); + const double flow + = get_prescribed_fluid_flow(cell->face(face)->boundary_id(), pt); + + if ( (traction.norm() < 1e-12) && (std::abs(flow) < 1e-12) ) continue; + + const double JxW_f = scratch.fe_face_values_ref.JxW(f_q_point); + + for (unsigned int i = 0; i < dofs_per_cell; ++i) + { + const unsigned int i_group = fe.system_to_base_index(i).first.first; + + if ((i_group == u_block) && (traction.norm() > 1e-12)) + { + const unsigned int component_i + = fe.system_to_component_index(i).first; + const double Nu_f + = scratch.fe_face_values_ref.shape_value(i, f_q_point); + residual_ad[i] -= (Nu_f * traction[component_i]) * JxW_f; + } + if ((i_group == p_fluid_block) && (std::abs(flow) > 1e-12)) + { + const double Nu_p + = scratch.fe_face_values_ref.shape_value(i, f_q_point); + residual_ad[i] -= (Nu_p * flow) * JxW_f; + } + } + } + } + } + + // Linearise the residual + for (unsigned int i = 0; i < dofs_per_cell; ++i) + { + const ADNumberType &R_i = residual_ad[i]; + + data.cell_rhs(i) -= R_i.val(); + for (unsigned int j=0; j + void Solid::update_end_timestep() + { + FilteredIterator::active_cell_iterator> + cell (IteratorFilters::LocallyOwnedCell(), + dof_handler_ref.begin_active()), + endc (IteratorFilters::LocallyOwnedCell(), + dof_handler_ref.end()); + for (; cell!=endc; ++cell) + { + Assert(cell->is_locally_owned(), ExcInternalError()); + Assert(cell->subdomain_id() == this_mpi_process, ExcInternalError()); + + const std::vector > > + lqph = quadrature_point_history.get_data(cell); + Assert(lqph.size() == n_q_points, ExcInternalError()); + for (unsigned int q_point = 0; q_point < n_q_points; ++q_point) + lqph[q_point]->update_end_timestep(); + } + } + + + //Solve the linearized equations + template + void Solid::solve_linear_system( TrilinosWrappers::MPI::BlockVector &newton_update_OUT) + { + + timerconsole.enter_subsection("Linear solver"); + timerfile.enter_subsection("Linear solver"); + pcout << " SLV " << std::flush; + outfile << " SLV " << std::flush; + + TrilinosWrappers::MPI::Vector newton_update_nb; + newton_update_nb.reinit(locally_owned_dofs, mpi_communicator); + + SolverControl solver_control (tangent_matrix_nb.m(), + 1.0e-6 * system_rhs_nb.l2_norm()); + TrilinosWrappers::SolverDirect solver (solver_control); + solver.solve(tangent_matrix_nb, newton_update_nb, system_rhs_nb); + + // Copy the non-block solution back to block system + for (unsigned int i=0; i + class GradientPostprocessor : public DataPostprocessorVector + { + public: + GradientPostprocessor (const unsigned int p_fluid_component) + : + DataPostprocessorVector ("grad_p", + update_gradients), + p_fluid_component (p_fluid_component) + {} + + virtual ~GradientPostprocessor(){} + + virtual void + evaluate_vector_field + (const DataPostprocessorInputs::Vector &input_data, + std::vector > &computed_quantities) const override + { + AssertDimension (input_data.solution_gradients.size(), + computed_quantities.size()); + for (unsigned int p=0; p void Solid::output_results_to_vtu + (const unsigned int timestep, + const double current_time, + TrilinosWrappers::MPI::BlockVector solution_IN) const + { + TrilinosWrappers::MPI::BlockVector solution_total(locally_owned_partitioning, + locally_relevant_partitioning, + mpi_communicator, + false); + solution_total = solution_IN; + Vector material_id; + material_id.reinit(triangulation.n_active_cells()); + std::vector partition_int(triangulation.n_active_cells()); + GradientPostprocessor gradient_postprocessor(p_fluid_component); + + //Declare local variables with number of stress components + //& assign value according to "dim" value + unsigned int num_comp_symm_tensor = 6; + + //Declare local vectors to store values + // OUTPUT AVERAGED ON ELEMENTS ------------------------------------------- + std::vector>cauchy_stresses_total_elements + (num_comp_symm_tensor, + Vector (triangulation.n_active_cells())); + std::vector>cauchy_stresses_E_elements + (num_comp_symm_tensor, + Vector (triangulation.n_active_cells())); + std::vector>stretches_elements + (dim, + Vector (triangulation.n_active_cells())); + std::vector>seepage_velocity_elements + (dim, + Vector (triangulation.n_active_cells())); + Vector porous_dissipation_elements + (triangulation.n_active_cells()); + Vector viscous_dissipation_elements + (triangulation.n_active_cells()); + Vector solid_vol_fraction_elements + (triangulation.n_active_cells()); + + // OUTPUT AVERAGED ON NODES ---------------------------------------------- + // We need to create a new FE space with a single dof per node to avoid + // duplication of the output on nodes for our problem with dim+1 dofs. + FE_Q fe_vertex(1); + DoFHandler vertex_handler_ref(triangulation); + vertex_handler_ref.distribute_dofs(fe_vertex); + AssertThrow(vertex_handler_ref.n_dofs() == triangulation.n_vertices(), + ExcDimensionMismatch(vertex_handler_ref.n_dofs(), + triangulation.n_vertices())); + + Vector counter_on_vertices_mpi + (vertex_handler_ref.n_dofs()); + Vector sum_counter_on_vertices + (vertex_handler_ref.n_dofs()); + + std::vector>cauchy_stresses_total_vertex_mpi + (num_comp_symm_tensor, + Vector(vertex_handler_ref.n_dofs())); + std::vector>sum_cauchy_stresses_total_vertex + (num_comp_symm_tensor, + Vector(vertex_handler_ref.n_dofs())); + std::vector>cauchy_stresses_E_vertex_mpi + (num_comp_symm_tensor, + Vector(vertex_handler_ref.n_dofs())); + std::vector>sum_cauchy_stresses_E_vertex + (num_comp_symm_tensor, + Vector(vertex_handler_ref.n_dofs())); + std::vector>stretches_vertex_mpi + (dim, + Vector(vertex_handler_ref.n_dofs())); + std::vector>sum_stretches_vertex + (dim, + Vector(vertex_handler_ref.n_dofs())); + Vector porous_dissipation_vertex_mpi(vertex_handler_ref.n_dofs()); + Vector sum_porous_dissipation_vertex(vertex_handler_ref.n_dofs()); + Vector viscous_dissipation_vertex_mpi(vertex_handler_ref.n_dofs()); + Vector sum_viscous_dissipation_vertex(vertex_handler_ref.n_dofs()); + Vector solid_vol_fraction_vertex_mpi(vertex_handler_ref.n_dofs()); + Vector sum_solid_vol_fraction_vertex(vertex_handler_ref.n_dofs()); + + // We need to create a new FE space with a dim dof per node to + // be able to ouput data on nodes in vector form + FESystem fe_vertex_vec(FE_Q(1),dim); + DoFHandler vertex_vec_handler_ref(triangulation); + vertex_vec_handler_ref.distribute_dofs(fe_vertex_vec); + AssertThrow(vertex_vec_handler_ref.n_dofs() == (dim*triangulation.n_vertices()), + ExcDimensionMismatch(vertex_vec_handler_ref.n_dofs(), + (dim*triangulation.n_vertices()))); + + Vector seepage_velocity_vertex_vec_mpi(vertex_vec_handler_ref.n_dofs()); + Vector sum_seepage_velocity_vertex_vec(vertex_vec_handler_ref.n_dofs()); + Vector counter_on_vertices_vec_mpi(vertex_vec_handler_ref.n_dofs()); + Vector sum_counter_on_vertices_vec(vertex_vec_handler_ref.n_dofs()); + // ----------------------------------------------------------------------- + + //Declare and initialize local unit vectors (to construct tensor basis) + std::vector> basis_vectors (dim, Tensor<1,dim>() ); + for (unsigned int i=0; i material(parameters,time); + else if (parameters.mat_type == "Ogden") + Ogden material(parameters,time); + else if (parameters.mat_type == "visco-Ogden") + visco_Ogden material(parameters,time); + else + Assert (false, ExcMessage("Material type not implemented")); + + //Define a local instance of FEValues to compute updated values required + //to calculate stresses + const UpdateFlags uf_cell(update_values | update_gradients | + update_JxW_values); + FEValues fe_values_ref (fe, qf_cell, uf_cell); + + //Iterate through elements (cells) and Gauss Points + FilteredIterator::active_cell_iterator> + cell(IteratorFilters::LocallyOwnedCell(), + dof_handler_ref.begin_active()), + endc(IteratorFilters::LocallyOwnedCell(), + dof_handler_ref.end()), + cell_v(IteratorFilters::LocallyOwnedCell(), + vertex_handler_ref.begin_active()), + cell_v_vec(IteratorFilters::LocallyOwnedCell(), + vertex_vec_handler_ref.begin_active()); + //start cell loop + for (; cell!=endc; ++cell, ++cell_v, ++cell_v_vec) + { + Assert(cell->is_locally_owned(), ExcInternalError()); + Assert(cell->subdomain_id() == this_mpi_process, ExcInternalError()); + + material_id(cell->active_cell_index())= + static_cast(cell->material_id()); + + fe_values_ref.reinit(cell); + + std::vector> solution_grads_u(n_q_points); + fe_values_ref[u_fe].get_function_gradients(solution_total, + solution_grads_u); + + std::vector solution_values_p_fluid_total(n_q_points); + fe_values_ref[p_fluid_fe].get_function_values(solution_total, + solution_values_p_fluid_total); + + std::vector> solution_grads_p_fluid_AD (n_q_points); + fe_values_ref[p_fluid_fe].get_function_gradients(solution_total, + solution_grads_p_fluid_AD); + + //start gauss point loop + for (unsigned int q_point=0; q_point + F_AD = Physics::Elasticity::Kinematics::F(solution_grads_u[q_point]); + ADNumberType det_F_AD = determinant(F_AD); + const double det_F = Tensor<0,dim,double>(det_F_AD); + + const std::vector>> + lqph = quadrature_point_history.get_data(cell); + Assert(lqph.size() == n_q_points, ExcInternalError()); + + const double p_fluid = solution_values_p_fluid_total[q_point]; + + //Cauchy stress + static const SymmetricTensor<2,dim,double> + I (Physics::Elasticity::StandardTensors::I); + SymmetricTensor<2,dim> sigma_E; + const SymmetricTensor<2,dim,ADNumberType> sigma_E_AD = + lqph[q_point]->get_Cauchy_E(F_AD); + + for (unsigned int i=0; i(sigma_E_AD[i][j]); + + SymmetricTensor<2,dim> sigma_fluid_vol (I); + sigma_fluid_vol *= -p_fluid; + const SymmetricTensor<2,dim> sigma = sigma_E + sigma_fluid_vol; + + //Volumes + const double solid_vol_fraction = (parameters.solid_vol_frac)/det_F; + + //Green-Lagrange strain + const Tensor<2,dim> E_strain = 0.5*(transpose(F_AD)*F_AD - I); + + //Seepage velocity + const Tensor<2,dim,ADNumberType> F_inv = invert(F_AD); + const Tensor<1,dim,ADNumberType> grad_p_fluid_AD = + solution_grads_p_fluid_AD[q_point]*F_inv; + const Tensor<1,dim,ADNumberType> seepage_vel_AD = + lqph[q_point]->get_seepage_velocity_current(F_AD, grad_p_fluid_AD); + + //Dissipations + const double porous_dissipation = + lqph[q_point]->get_porous_dissipation(F_AD, grad_p_fluid_AD); + const double viscous_dissipation = + lqph[q_point]->get_viscous_dissipation(); + + // OUTPUT AVERAGED ON ELEMENTS ------------------------------------------- + // Both average on elements and on nodes is NOT weighted with the + // integration point volume, i.e., we assume equal contribution of each + // integration point to the average. Ideally, it should be weighted, + // but I haven't invested time in getting it to work properly. + if (parameters.outtype == "elements") + { + for (unsigned int j=0; jactive_cell_index()) + += ((sigma*basis_vectors[j])*basis_vectors[j])/n_q_points; + cauchy_stresses_E_elements[j](cell->active_cell_index()) + += ((sigma_E*basis_vectors[j])*basis_vectors[j])/n_q_points; + stretches_elements[j](cell->active_cell_index()) + += std::sqrt(1.0+2.0*Tensor<0,dim,double>(E_strain[j][j])) + /n_q_points; + seepage_velocity_elements[j](cell->active_cell_index()) + += Tensor<0,dim,double>(seepage_vel_AD[j])/n_q_points; + } + + porous_dissipation_elements(cell->active_cell_index()) + += porous_dissipation/n_q_points; + viscous_dissipation_elements(cell->active_cell_index()) + += viscous_dissipation/n_q_points; + solid_vol_fraction_elements(cell->active_cell_index()) + += solid_vol_fraction/n_q_points; + + cauchy_stresses_total_elements[3](cell->active_cell_index()) + += ((sigma*basis_vectors[0])*basis_vectors[1])/n_q_points; //sig_xy + cauchy_stresses_total_elements[4](cell->active_cell_index()) + += ((sigma*basis_vectors[0])*basis_vectors[2])/n_q_points;//sig_xz + cauchy_stresses_total_elements[5](cell->active_cell_index()) + += ((sigma*basis_vectors[1])*basis_vectors[2])/n_q_points;//sig_yz + + cauchy_stresses_E_elements[3](cell->active_cell_index()) + += ((sigma_E*basis_vectors[0])* basis_vectors[1])/n_q_points; //sig_xy + cauchy_stresses_E_elements[4](cell->active_cell_index()) + += ((sigma_E*basis_vectors[0])* basis_vectors[2])/n_q_points;//sig_xz + cauchy_stresses_E_elements[5](cell->active_cell_index()) + += ((sigma_E*basis_vectors[1])* basis_vectors[2])/n_q_points;//sig_yz + + } + // OUTPUT AVERAGED ON NODES ------------------------------------------- + else if (parameters.outtype == "nodes") + { + for (unsigned int v=0; v<(GeometryInfo::vertices_per_cell); ++v) + { + types::global_dof_index local_vertex_indices = + cell_v->vertex_dof_index(v, 0); + counter_on_vertices_mpi(local_vertex_indices) += 1; + for (unsigned int k=0; k(E_strain[k][k])); + + types::global_dof_index local_vertex_vec_indices = + cell_v_vec->vertex_dof_index(v, k); + counter_on_vertices_vec_mpi(local_vertex_vec_indices) += 1; + seepage_velocity_vertex_vec_mpi(local_vertex_vec_indices) + += Tensor<0,dim,double>(seepage_vel_AD[k]); + } + + porous_dissipation_vertex_mpi(local_vertex_indices) + += porous_dissipation; + viscous_dissipation_vertex_mpi(local_vertex_indices) + += viscous_dissipation; + solid_vol_fraction_vertex_mpi(local_vertex_indices) + += solid_vol_fraction; + + cauchy_stresses_total_vertex_mpi[3](local_vertex_indices) + += (sigma*basis_vectors[0])*basis_vectors[1]; //sig_xy + cauchy_stresses_total_vertex_mpi[4](local_vertex_indices) + += (sigma*basis_vectors[0])*basis_vectors[2];//sig_xz + cauchy_stresses_total_vertex_mpi[5](local_vertex_indices) + += (sigma*basis_vectors[1])*basis_vectors[2]; //sig_yz + + cauchy_stresses_E_vertex_mpi[3](local_vertex_indices) + += (sigma_E*basis_vectors[0])*basis_vectors[1]; //sig_xy + cauchy_stresses_E_vertex_mpi[4](local_vertex_indices) + += (sigma_E*basis_vectors[0])*basis_vectors[2];//sig_xz + cauchy_stresses_E_vertex_mpi[5](local_vertex_indices) + += (sigma_E*basis_vectors[1])*basis_vectors[2]; //sig_yz + } + } + //--------------------------------------------------------------- + } //end gauss point loop + }//end cell loop + + // Different nodes might have different amount of contributions, e.g., + // corner nodes have less integration points contributing to the averaged. + // This is why we need a counter and divide at the end, outside the cell loop. + if (parameters.outtype == "nodes") + { + for (unsigned int d=0; d<(vertex_handler_ref.n_dofs()); ++d) + { + sum_counter_on_vertices[d] = + Utilities::MPI::sum(counter_on_vertices_mpi[d], + mpi_communicator); + sum_porous_dissipation_vertex[d] = + Utilities::MPI::sum(porous_dissipation_vertex_mpi[d], + mpi_communicator); + sum_viscous_dissipation_vertex[d] = + Utilities::MPI::sum(viscous_dissipation_vertex_mpi[d], + mpi_communicator); + sum_solid_vol_fraction_vertex[d] = + Utilities::MPI::sum(solid_vol_fraction_vertex_mpi[d], + mpi_communicator); + + for (unsigned int k=0; k0) + { + for (unsigned int i=0; i0) + { + sum_seepage_velocity_vertex_vec[d] /= sum_counter_on_vertices_vec[d]; + } + } + + } + + // Add the results to the solution to create the output file for Paraview + DataOut data_out; + std::vector + comp_type(dim, + DataComponentInterpretation::component_is_part_of_vector); + comp_type.push_back(DataComponentInterpretation::component_is_scalar); + + GridTools::get_subdomain_association(triangulation, partition_int); + + std::vector solution_name(dim, "displacement"); + solution_name.push_back("pore_pressure"); + + data_out.attach_dof_handler(dof_handler_ref); + data_out.add_data_vector(solution_total, + solution_name, + DataOut::type_dof_data, + comp_type); + + data_out.add_data_vector(solution_total, + gradient_postprocessor); + + const Vector partitioning(partition_int.begin(), + partition_int.end()); + + data_out.add_data_vector(partitioning, "partitioning"); + data_out.add_data_vector(material_id, "material_id"); + + // Integration point results ----------------------------------------------------------- + if (parameters.outtype == "elements") + { + data_out.add_data_vector(cauchy_stresses_total_elements[0], "cauchy_xx"); + data_out.add_data_vector(cauchy_stresses_total_elements[1], "cauchy_yy"); + data_out.add_data_vector(cauchy_stresses_total_elements[2], "cauchy_zz"); + data_out.add_data_vector(cauchy_stresses_total_elements[3], "cauchy_xy"); + data_out.add_data_vector(cauchy_stresses_total_elements[4], "cauchy_xz"); + data_out.add_data_vector(cauchy_stresses_total_elements[5], "cauchy_yz"); + + data_out.add_data_vector(cauchy_stresses_E_elements[0], "cauchy_E_xx"); + data_out.add_data_vector(cauchy_stresses_E_elements[1], "cauchy_E_yy"); + data_out.add_data_vector(cauchy_stresses_E_elements[2], "cauchy_E_zz"); + data_out.add_data_vector(cauchy_stresses_E_elements[3], "cauchy_E_xy"); + data_out.add_data_vector(cauchy_stresses_E_elements[4], "cauchy_E_xz"); + data_out.add_data_vector(cauchy_stresses_E_elements[5], "cauchy_E_yz"); + + data_out.add_data_vector(stretches_elements[0], "stretch_xx"); + data_out.add_data_vector(stretches_elements[1], "stretch_yy"); + data_out.add_data_vector(stretches_elements[2], "stretch_zz"); + + data_out.add_data_vector(seepage_velocity_elements[0], "seepage_vel_x"); + data_out.add_data_vector(seepage_velocity_elements[1], "seepage_vel_y"); + data_out.add_data_vector(seepage_velocity_elements[2], "seepage_vel_z"); + + data_out.add_data_vector(porous_dissipation_elements, "dissipation_porous"); + data_out.add_data_vector(viscous_dissipation_elements, "dissipation_viscous"); + data_out.add_data_vector(solid_vol_fraction_elements, "solid_vol_fraction"); + } + else if (parameters.outtype == "nodes") + { + data_out.add_data_vector(vertex_handler_ref, + sum_cauchy_stresses_total_vertex[0], + "cauchy_xx"); + data_out.add_data_vector(vertex_handler_ref, + sum_cauchy_stresses_total_vertex[1], + "cauchy_yy"); + data_out.add_data_vector(vertex_handler_ref, + sum_cauchy_stresses_total_vertex[2], + "cauchy_zz"); + data_out.add_data_vector(vertex_handler_ref, + sum_cauchy_stresses_total_vertex[3], + "cauchy_xy"); + data_out.add_data_vector(vertex_handler_ref, + sum_cauchy_stresses_total_vertex[4], + "cauchy_xz"); + data_out.add_data_vector(vertex_handler_ref, + sum_cauchy_stresses_total_vertex[5], + "cauchy_yz"); + + data_out.add_data_vector(vertex_handler_ref, + sum_cauchy_stresses_E_vertex[0], + "cauchy_E_xx"); + data_out.add_data_vector(vertex_handler_ref, + sum_cauchy_stresses_E_vertex[1], + "cauchy_E_yy"); + data_out.add_data_vector(vertex_handler_ref, + sum_cauchy_stresses_E_vertex[2], + "cauchy_E_zz"); + data_out.add_data_vector(vertex_handler_ref, + sum_cauchy_stresses_E_vertex[3], + "cauchy_E_xy"); + data_out.add_data_vector(vertex_handler_ref, + sum_cauchy_stresses_E_vertex[4], + "cauchy_E_xz"); + data_out.add_data_vector(vertex_handler_ref, + sum_cauchy_stresses_E_vertex[5], + "cauchy_E_yz"); + + data_out.add_data_vector(vertex_handler_ref, + sum_stretches_vertex[0], + "stretch_xx"); + data_out.add_data_vector(vertex_handler_ref, + sum_stretches_vertex[1], + "stretch_yy"); + data_out.add_data_vector(vertex_handler_ref, + sum_stretches_vertex[2], + "stretch_zz"); + + std::vector + comp_type_vec(dim, + DataComponentInterpretation::component_is_part_of_vector); + std::vector solution_name_vec(dim,"seepage_velocity"); + + data_out.add_data_vector(vertex_vec_handler_ref, + sum_seepage_velocity_vertex_vec, + solution_name_vec, + comp_type_vec); + + data_out.add_data_vector(vertex_handler_ref, + sum_porous_dissipation_vertex, + "dissipation_porous"); + data_out.add_data_vector(vertex_handler_ref, + sum_viscous_dissipation_vertex, + "dissipation_viscous"); + data_out.add_data_vector(vertex_handler_ref, + sum_solid_vol_fraction_vertex, + "solid_vol_fraction"); + } + //--------------------------------------------------------------------- + + data_out.build_patches(degree_displ); + + struct Filename + { + static std::string get_filename_vtu(unsigned int process, + unsigned int timestep, + const unsigned int n_digits = 5) + { + std::ostringstream filename_vtu; + filename_vtu + << "solution." + << Utilities::int_to_string(process, n_digits) + << "." + << Utilities::int_to_string(timestep, n_digits) + << ".vtu"; + return filename_vtu.str(); + } + + static std::string get_filename_pvtu(unsigned int timestep, + const unsigned int n_digits = 5) + { + std::ostringstream filename_vtu; + filename_vtu + << "solution." + << Utilities::int_to_string(timestep, n_digits) + << ".pvtu"; + return filename_vtu.str(); + } + + static std::string get_filename_pvd (void) + { + std::ostringstream filename_vtu; + filename_vtu + << "solution.pvd"; + return filename_vtu.str(); + } + }; + + const std::string filename_vtu = Filename::get_filename_vtu(this_mpi_process, + timestep); + std::ofstream output(filename_vtu.c_str()); + data_out.write_vtu(output); + + // We have a collection of files written in parallel + // This next set of steps should only be performed by master process + if (this_mpi_process == 0) + { + // List of all files written out at this timestep by all processors + std::vector parallel_filenames_vtu; + for (unsigned int p=0; p> time_and_name_history; + time_and_name_history.push_back(std::make_pair(current_time, + filename_pvtu)); + const std::string filename_pvd(Filename::get_filename_pvd()); + std::ofstream pvd_output(filename_pvd.c_str()); + DataOutBase::write_pvd_record(pvd_output, time_and_name_history); + } + } + + + //Print results to plotting file + template + void Solid::output_results_to_plot( + const unsigned int timestep, + const double current_time, + TrilinosWrappers::MPI::BlockVector solution_IN, + std::vector > &tracked_vertices_IN, + std::ofstream &plotpointfile) const + { + TrilinosWrappers::MPI::BlockVector solution_total(locally_owned_partitioning, + locally_relevant_partitioning, + mpi_communicator, + false); + + (void) timestep; + solution_total = solution_IN; + + //Variables needed to print the solution file for plotting + Point reaction_force; + Point reaction_force_pressure; + Point reaction_force_extra; + double total_fluid_flow = 0.0; + double total_porous_dissipation = 0.0; + double total_viscous_dissipation = 0.0; + double total_solid_vol = 0.0; + double total_vol_current = 0.0; + double total_vol_reference = 0.0; + std::vector> solution_vertices(tracked_vertices_IN.size()); + + //Auxiliar variables needed for mpi processing + Tensor<1,dim> sum_reaction_mpi; + Tensor<1,dim> sum_reaction_pressure_mpi; + Tensor<1,dim> sum_reaction_extra_mpi; + sum_reaction_mpi = 0.0; + sum_reaction_pressure_mpi = 0.0; + sum_reaction_extra_mpi = 0.0; + double sum_total_flow_mpi = 0.0; + double sum_porous_dissipation_mpi = 0.0; + double sum_viscous_dissipation_mpi = 0.0; + double sum_solid_vol_mpi = 0.0; + double sum_vol_current_mpi = 0.0; + double sum_vol_reference_mpi = 0.0; + + //Declare an instance of the material class object + if (parameters.mat_type == "Neo-Hooke") + NeoHooke material(parameters,time); + else if (parameters.mat_type == "Ogden") + Ogden material(parameters, time); + else if (parameters.mat_type == "visco-Ogden") + visco_Ogden material(parameters,time); + else + Assert (false, ExcMessage("Material type not implemented")); + + //Define a local instance of FEValues to compute updated values required + //to calculate stresses + const UpdateFlags uf_cell(update_values | update_gradients | + update_JxW_values); + FEValues fe_values_ref (fe, qf_cell, uf_cell); + + //Iterate through elements (cells) and Gauss Points + FilteredIterator::active_cell_iterator> + cell(IteratorFilters::LocallyOwnedCell(), + dof_handler_ref.begin_active()), + endc(IteratorFilters::LocallyOwnedCell(), + dof_handler_ref.end()); + //start cell loop + for (; cell!=endc; ++cell) + { + Assert(cell->is_locally_owned(), ExcInternalError()); + Assert(cell->subdomain_id() == this_mpi_process, ExcInternalError()); + + fe_values_ref.reinit(cell); + + std::vector> solution_grads_u(n_q_points); + fe_values_ref[u_fe].get_function_gradients(solution_total, + solution_grads_u); + + std::vector solution_values_p_fluid_total(n_q_points); + fe_values_ref[p_fluid_fe].get_function_values(solution_total, + solution_values_p_fluid_total); + + std::vector> solution_grads_p_fluid_AD(n_q_points); + fe_values_ref[p_fluid_fe].get_function_gradients(solution_total, + solution_grads_p_fluid_AD); + + //start gauss point loop + for (unsigned int q_point=0; q_point + F_AD = Physics::Elasticity::Kinematics::F(solution_grads_u[q_point]); + ADNumberType det_F_AD = determinant(F_AD); + const double det_F = Tensor<0,dim,double>(det_F_AD); + + const std::vector>> + lqph = quadrature_point_history.get_data(cell); + Assert(lqph.size() == n_q_points, ExcInternalError()); + + double JxW = fe_values_ref.JxW(q_point); + + //Volumes + sum_vol_current_mpi += det_F * JxW; + sum_vol_reference_mpi += JxW; + sum_solid_vol_mpi += parameters.solid_vol_frac * JxW * det_F; + + //Seepage velocity + const Tensor<2,dim,ADNumberType> F_inv = invert(F_AD); + const Tensor<1,dim,ADNumberType> + grad_p_fluid_AD = solution_grads_p_fluid_AD[q_point]*F_inv; + const Tensor<1,dim,ADNumberType> seepage_vel_AD + = lqph[q_point]->get_seepage_velocity_current(F_AD, grad_p_fluid_AD); + + //Dissipations + const double porous_dissipation = + lqph[q_point]->get_porous_dissipation(F_AD, grad_p_fluid_AD); + sum_porous_dissipation_mpi += porous_dissipation * det_F * JxW; + + const double viscous_dissipation = lqph[q_point]->get_viscous_dissipation(); + sum_viscous_dissipation_mpi += viscous_dissipation * det_F * JxW; + + //--------------------------------------------------------------- + } //end gauss point loop + + // Compute reaction force on load boundary & total fluid flow across + // drained boundary. + // Define a local instance of FEFaceValues to compute values required + // to calculate reaction force + const UpdateFlags uf_face( update_values | update_gradients | + update_normal_vectors | update_JxW_values ); + FEFaceValues fe_face_values_ref(fe, qf_face, uf_face); + + //start face loop + for (unsigned int face=0; face::faces_per_cell; ++face) + { + //Reaction force + if (cell->face(face)->at_boundary() == true && + cell->face(face)->boundary_id() == get_reaction_boundary_id_for_output() ) + { + fe_face_values_ref.reinit(cell, face); + + //Get displacement gradients for current face + std::vector > solution_grads_u_f(n_q_points_f); + fe_face_values_ref[u_fe].get_function_gradients + (solution_total, + solution_grads_u_f); + + //Get pressure for current element + std::vector< double > solution_values_p_fluid_total_f(n_q_points_f); + fe_face_values_ref[p_fluid_fe].get_function_values + (solution_total, + solution_values_p_fluid_total_f); + + //start gauss points on faces loop + for (unsigned int f_q_point=0; f_q_point &N = fe_face_values_ref.normal_vector(f_q_point); + const double JxW_f = fe_face_values_ref.JxW(f_q_point); + + //Compute deformation gradient from displacements gradient + //(present configuration) + const Tensor<2,dim,ADNumberType> F_AD = + Physics::Elasticity::Kinematics::F(solution_grads_u_f[f_q_point]); + + const std::vector>> + lqph = quadrature_point_history.get_data(cell); + Assert(lqph.size() == n_q_points, ExcInternalError()); + + const double p_fluid = solution_values_p_fluid_total[f_q_point]; + + //Cauchy stress + static const SymmetricTensor<2,dim,double> + I (Physics::Elasticity::StandardTensors::I); + SymmetricTensor<2,dim> sigma_E; + const SymmetricTensor<2,dim,ADNumberType> sigma_E_AD = + lqph[f_q_point]->get_Cauchy_E(F_AD); + + for (unsigned int i=0; i(sigma_E_AD[i][j]); + + SymmetricTensor<2,dim> sigma_fluid_vol(I); + sigma_fluid_vol *= -1.0*p_fluid; + const SymmetricTensor<2,dim> sigma = sigma_E+sigma_fluid_vol; + sum_reaction_mpi += sigma * N * JxW_f; + sum_reaction_pressure_mpi += sigma_fluid_vol * N * JxW_f; + sum_reaction_extra_mpi += sigma_E * N * JxW_f; + }//end gauss points on faces loop + } + + //Fluid flow + if (cell->face(face)->at_boundary() == true && + (cell->face(face)->boundary_id() == + get_drained_boundary_id_for_output().first || + cell->face(face)->boundary_id() == + get_drained_boundary_id_for_output().second ) ) + { + fe_face_values_ref.reinit(cell, face); + + //Get displacement gradients for current face + std::vector> solution_grads_u_f(n_q_points_f); + fe_face_values_ref[u_fe].get_function_gradients + (solution_total, + solution_grads_u_f); + + //Get pressure gradients for current face + std::vector> solution_grads_p_f(n_q_points_f); + fe_face_values_ref[p_fluid_fe].get_function_gradients + (solution_total, + solution_grads_p_f); + + //start gauss points on faces loop + for (unsigned int f_q_point=0; f_q_point &N = + fe_face_values_ref.normal_vector(f_q_point); + const double JxW_f = fe_face_values_ref.JxW(f_q_point); + + //Deformation gradient and inverse from displacements gradient + //(present configuration) + const Tensor<2,dim,ADNumberType> F_AD + = Physics::Elasticity::Kinematics::F(solution_grads_u_f[f_q_point]); + + const Tensor<2,dim,ADNumberType> F_inv_AD = invert(F_AD); + ADNumberType det_F_AD = determinant(F_AD); + + const std::vector>> + lqph = quadrature_point_history.get_data(cell); + Assert(lqph.size() == n_q_points, ExcInternalError()); + + //Seepage velocity + Tensor<1,dim> seepage; + double det_F = Tensor<0,dim,double>(det_F_AD); + const Tensor<1,dim,ADNumberType> grad_p + = solution_grads_p_f[f_q_point]*F_inv_AD; + const Tensor<1,dim,ADNumberType> seepage_AD + = lqph[f_q_point]->get_seepage_velocity_current(F_AD, grad_p); + + for (unsigned int i=0; i(seepage_AD[i]); + + sum_total_flow_mpi += (seepage/det_F) * N * JxW_f; + }//end gauss points on faces loop + } + }//end face loop + }//end cell loop + + //Sum the results from different MPI process and then add to the reaction_force vector + //In theory, the solution on each surface (each cell) only exists in one MPI process + //so, we add all MPI process, one will have the solution and the others will be zero + for (unsigned int d=0; d solution_u_vector(solution_vector_u_MPI); + Vector solution_p_vector(solution_vector_p_MPI); + + if (this_mpi_process == 0) + { + //Append the pressure solution vector to the displacement solution vector, + //creating a single solution vector equivalent to the original BlockVector + //so FEFieldFunction will work with the dof_handler_ref. + Vector solution_vector(solution_p_vector.size() + +solution_u_vector.size()); + + for (unsigned int d=0; d<(solution_u_vector.size()); ++d) + solution_vector[d] = solution_u_vector[d]; + + for (unsigned int d=0; d<(solution_p_vector.size()); ++d) + solution_vector[solution_u_vector.size()+d] = solution_p_vector[d]; + + Functions::FEFieldFunction> + find_solution(dof_handler_ref, solution_vector); + + for (unsigned int p=0; p update(dim+1); + Point pt_ref; + + pt_ref[0]= tracked_vertices_IN[p][0]; + pt_ref[1]= tracked_vertices_IN[p][1]; + pt_ref[2]= tracked_vertices_IN[p][2]; + + find_solution.vector_value(pt_ref, update); + + for (unsigned int d=0; d<(dim+1); ++d) + { + //For values close to zero, set to 0.0 + if (abs(update[d])<1.5*parameters.tol_u) + update[d] = 0.0; + solution_vertices[p][d] = update[d]; + } + } + // Write the results to the plotting file. + // Add two blank lines between cycles in the cyclic loading examples so GNUPLOT can detect each cycle as a different block + if (( (parameters.geom_type == "Budday_cube_tension_compression_fully_fixed")|| + (parameters.geom_type == "Budday_cube_tension_compression")|| + (parameters.geom_type == "Budday_cube_shear_fully_fixed") ) && + ( (abs(current_time - parameters.end_time/3.) <0.9*parameters.delta_t)|| + (abs(current_time - 2.*parameters.end_time/3.)<0.9*parameters.delta_t) ) && + parameters.num_cycle_sets == 1 ) + { + plotpointfile << std::endl<< std::endl; + } + if (( (parameters.geom_type == "Budday_cube_tension_compression_fully_fixed")|| + (parameters.geom_type == "Budday_cube_tension_compression")|| + (parameters.geom_type == "Budday_cube_shear_fully_fixed") ) && + ( (abs(current_time - parameters.end_time/9.) <0.9*parameters.delta_t)|| + (abs(current_time - 2.*parameters.end_time/9.)<0.9*parameters.delta_t)|| + (abs(current_time - 3.*parameters.end_time/9.)<0.9*parameters.delta_t)|| + (abs(current_time - 5.*parameters.end_time/9.)<0.9*parameters.delta_t)|| + (abs(current_time - 7.*parameters.end_time/9.)<0.9*parameters.delta_t) ) && + parameters.num_cycle_sets == 2 ) + { + plotpointfile << std::endl<< std::endl; + } + + plotpointfile << std::setprecision(6) << std::scientific; + plotpointfile << std::setw(16) << current_time << "," + << std::setw(15) << total_vol_reference << "," + << std::setw(15) << total_vol_current << "," + << std::setw(15) << total_solid_vol << ","; + + if (current_time == 0.0) + { + for (unsigned int p=0; p + void Solid::print_console_file_header(std::ofstream &outputfile) const + { + outputfile << "/*-----------------------------------------------------------------------------------------"; + outputfile << "\n\n Poro-viscoelastic formulation to solve nonlinear solid mechanics problems using deal.ii"; + outputfile << "\n\n Problem setup by E Comellas and J-P Pelteret, University of Erlangen-Nuremberg, 2018"; + outputfile << "\n\n/*-----------------------------------------------------------------------------------------"; + outputfile << "\n\nCONSOLE OUTPUT: \n\n"; + } + + //Header for plotting output file + template + void Solid::print_plot_file_header(std::vector > &tracked_vertices, + std::ofstream &plotpointfile) const + { + plotpointfile << "#\n# *** Solution history for tracked vertices -- DOF: 0 = Ux, 1 = Uy, 2 = Uz, 3 = P ***" + << std::endl; + + for (unsigned int p=0; p + void Solid::print_console_file_footer(std::ofstream &outputfile) const + { + //Copy "parameters" file at end of output file. + std::ifstream infile("parameters.prm"); + std::string content = ""; + int i; + + for(i=0 ; infile.eof()!=true ; i++) + { + char aux = infile.get(); + content += aux; + if(aux=='\n') content += '#'; + } + + i--; + content.erase(content.end()-1); + infile.close(); + + outputfile << "\n\n\n\n PARAMETERS FILE USED IN THIS COMPUTATION: \n#" + << std::endl + << content; + } + + //Footer for plotting output file + template + void Solid::print_plot_file_footer(std::ofstream &plotpointfile) const + { + //Copy "parameters" file at end of output file. + std::ifstream infile("parameters.prm"); + std::string content = ""; + int i; + + for(i=0 ; infile.eof()!=true ; i++) + { + char aux = infile.get(); + content += aux; + if(aux=='\n') content += '#'; + } + + i--; + content.erase(content.end()-1); + infile.close(); + + plotpointfile << "#"<< std::endl + << "#"<< std::endl + << "# PARAMETERS FILE USED IN THIS COMPUTATION:" << std::endl + << "#"<< std::endl + << content; + } + + + // @sect3{Verification examples from Ehlers and Eipper 1999} + // We group the definition of the geometry, boundary and loading conditions specific to + // the verification examples from Ehlers and Eipper 1999 into specific classes. + + //@sect4{Base class: Tube geometry and boundary conditions} + template + class VerificationEhlers1999TubeBase + : public Solid + { + public: + VerificationEhlers1999TubeBase (const Parameters::AllParameters ¶meters) + : Solid (parameters) + {} + + virtual ~VerificationEhlers1999TubeBase () {} + + private: + virtual void make_grid() override + { + GridGenerator::cylinder( this->triangulation, + 0.1, + 0.5); + + const double rot_angle = 3.0*numbers::PI/2.0; + GridTools::rotate( Point<3>::unit_vector(1), rot_angle, this->triangulation); + + this->triangulation.reset_manifold(0); + static const CylindricalManifold manifold_description_3d(2); + this->triangulation.set_manifold (0, manifold_description_3d); + GridTools::scale(this->parameters.scale, this->triangulation); + this->triangulation.refine_global(std::max (1U, this->parameters.global_refinement)); + this->triangulation.reset_manifold(0); + } + + virtual void define_tracked_vertices(std::vector > &tracked_vertices) override + { + tracked_vertices[0][0] = 0.0*this->parameters.scale; + tracked_vertices[0][1] = 0.0*this->parameters.scale; + tracked_vertices[0][2] = 0.5*this->parameters.scale; + + tracked_vertices[1][0] = 0.0*this->parameters.scale; + tracked_vertices[1][1] = 0.0*this->parameters.scale; + tracked_vertices[1][2] = -0.5*this->parameters.scale; + } + + virtual void make_dirichlet_constraints(AffineConstraints &constraints) override + { + if (this->time.get_timestep() < 2) + { + VectorTools::interpolate_boundary_values(this->dof_handler_ref, + 2, + Functions::ConstantFunction(this->parameters.drained_pressure,this->n_components), + constraints, + (this->fe.component_mask(this->pressure))); + } + else + { + VectorTools::interpolate_boundary_values(this->dof_handler_ref, + 2, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->pressure))); + } + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 0, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->x_displacement)| + this->fe.component_mask(this->y_displacement) ) ); + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 1, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->x_displacement) | + this->fe.component_mask(this->y_displacement) | + this->fe.component_mask(this->z_displacement) )); + } + + virtual double + get_prescribed_fluid_flow (const types::boundary_id &boundary_id, + const Point &pt) const override + { + (void)pt; + (void)boundary_id; + return 0.0; + } + + virtual types::boundary_id + get_reaction_boundary_id_for_output() const override + { + return 2; + } + + virtual std::pair + get_drained_boundary_id_for_output() const override + { + return std::make_pair(2,2); + } + + virtual std::vector + get_dirichlet_load(const types::boundary_id &boundary_id, + const int &direction) const override + { + std::vector displ_incr(dim, 0.0); + (void)boundary_id; + (void)direction; + AssertThrow(false, ExcMessage("Displacement loading not implemented for Ehlers verification examples.")); + + return displ_incr; + } + }; + + //@sect4{Derived class: Step load example} + template + class VerificationEhlers1999StepLoad + : public VerificationEhlers1999TubeBase + { + public: + VerificationEhlers1999StepLoad (const Parameters::AllParameters ¶meters) + : VerificationEhlers1999TubeBase (parameters) + {} + + virtual ~VerificationEhlers1999StepLoad () {} + + private: + virtual Tensor<1,dim> + get_neumann_traction (const types::boundary_id &boundary_id, + const Point &pt, + const Tensor<1,dim> &N) const override + { + if (this->parameters.load_type == "pressure") + { + if (boundary_id == 2) + { + return this->parameters.load * N; + } + } + + (void)pt; + + return Tensor<1,dim>(); + } + }; + + //@sect4{Derived class: Load increasing example} + template + class VerificationEhlers1999IncreaseLoad + : public VerificationEhlers1999TubeBase + { + public: + VerificationEhlers1999IncreaseLoad (const Parameters::AllParameters ¶meters) + : VerificationEhlers1999TubeBase (parameters) + {} + + virtual ~VerificationEhlers1999IncreaseLoad () {} + + private: + virtual Tensor<1,dim> + get_neumann_traction (const types::boundary_id &boundary_id, + const Point &pt, + const Tensor<1,dim> &N) const override + { + if (this->parameters.load_type == "pressure") + { + if (boundary_id == 2) + { + const double initial_load = this->parameters.load; + const double final_load = 20.0*initial_load; + const double initial_time = this->time.get_delta_t(); + const double final_time = this->time.get_end(); + const double current_time = this->time.get_current(); + const double load = initial_load + (final_load-initial_load)*(current_time-initial_time)/(final_time-initial_time); + return load * N; + } + } + + (void)pt; + + return Tensor<1,dim>(); + } + }; + + //@sect4{Class: Consolidation cube} + template + class VerificationEhlers1999CubeConsolidation + : public Solid + { + public: + VerificationEhlers1999CubeConsolidation (const Parameters::AllParameters ¶meters) + : Solid (parameters) + {} + + virtual ~VerificationEhlers1999CubeConsolidation () {} + + private: + virtual void + make_grid() override + { + GridGenerator::hyper_rectangle(this->triangulation, + Point(0.0, 0.0, 0.0), + Point(1.0, 1.0, 1.0), + true); + + GridTools::scale(this->parameters.scale, this->triangulation); + this->triangulation.refine_global(std::max (1U, this->parameters.global_refinement)); + + typename Triangulation::active_cell_iterator cell = + this->triangulation.begin_active(), endc = this->triangulation.end(); + for (; cell != endc; ++cell) + { + for (unsigned int face = 0; face < GeometryInfo::faces_per_cell; ++face) + if (cell->face(face)->at_boundary() == true && + cell->face(face)->center()[2] == 1.0 * this->parameters.scale) + { + if (cell->face(face)->center()[0] < 0.5 * this->parameters.scale && + cell->face(face)->center()[1] < 0.5 * this->parameters.scale) + cell->face(face)->set_boundary_id(100); + else + cell->face(face)->set_boundary_id(101); + } + } + } + + virtual void + define_tracked_vertices(std::vector > &tracked_vertices) override + { + tracked_vertices[0][0] = 0.0*this->parameters.scale; + tracked_vertices[0][1] = 0.0*this->parameters.scale; + tracked_vertices[0][2] = 1.0*this->parameters.scale; + + tracked_vertices[1][0] = 0.0*this->parameters.scale; + tracked_vertices[1][1] = 0.0*this->parameters.scale; + tracked_vertices[1][2] = 0.0*this->parameters.scale; + } + + virtual void + make_dirichlet_constraints(AffineConstraints &constraints) override + { + if (this->time.get_timestep() < 2) + { + VectorTools::interpolate_boundary_values(this->dof_handler_ref, + 101, + Functions::ConstantFunction(this->parameters.drained_pressure,this->n_components), + constraints, + (this->fe.component_mask(this->pressure))); + } + else + { + VectorTools::interpolate_boundary_values(this->dof_handler_ref, + 101, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->pressure))); + } + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 0, + Functions::ZeroFunction(this->n_components), + constraints, + this->fe.component_mask(this->x_displacement)); + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 1, + Functions::ZeroFunction(this->n_components), + constraints, + this->fe.component_mask(this->x_displacement)); + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 2, + Functions::ZeroFunction(this->n_components), + constraints, + this->fe.component_mask(this->y_displacement)); + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 3, + Functions::ZeroFunction(this->n_components), + constraints, + this->fe.component_mask(this->y_displacement)); + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 4, + Functions::ZeroFunction(this->n_components), + constraints, + ( this->fe.component_mask(this->x_displacement) | + this->fe.component_mask(this->y_displacement) | + this->fe.component_mask(this->z_displacement) )); + } + + virtual Tensor<1,dim> + get_neumann_traction (const types::boundary_id &boundary_id, + const Point &pt, + const Tensor<1,dim> &N) const override + { + if (this->parameters.load_type == "pressure") + { + if (boundary_id == 100) + { + return this->parameters.load * N; + } + } + + (void)pt; + + return Tensor<1,dim>(); + } + + virtual double + get_prescribed_fluid_flow (const types::boundary_id &boundary_id, + const Point &pt) const override + { + (void)pt; + (void)boundary_id; + return 0.0; + } + + virtual types::boundary_id + get_reaction_boundary_id_for_output() const override + { + return 100; + } + + virtual std::pair + get_drained_boundary_id_for_output() const override + { + return std::make_pair(101,101); + } + + virtual std::vector + get_dirichlet_load(const types::boundary_id &boundary_id, + const int &direction) const override + { + std::vector displ_incr(dim, 0.0); + (void)boundary_id; + (void)direction; + AssertThrow(false, ExcMessage("Displacement loading not implemented for Ehlers verification examples.")); + + return displ_incr; + } + }; + + //@sect4{Franceschini experiments} + template + class Franceschini2006Consolidation + : public Solid + { + public: + Franceschini2006Consolidation (const Parameters::AllParameters ¶meters) + : Solid (parameters) + {} + + virtual ~Franceschini2006Consolidation () {} + + private: + virtual void make_grid() override + { + const Point mesh_center(0.0, 0.0); + const double radius = 0.5; + //const double height = 0.27; //8.1 mm for 30 mm radius + const double height = 0.23; //6.9 mm for 30 mm radius + Triangulation triangulation_in; + GridGenerator::hyper_ball( triangulation_in, + mesh_center, + radius); + + GridGenerator::extrude_triangulation(triangulation_in, + 2, + height, + this->triangulation); + + const CylindricalManifold cylinder_3d(2); + const types::manifold_id cylinder_id = 0; + + + this->triangulation.set_manifold(cylinder_id, cylinder_3d); + + for (auto cell : this->triangulation.active_cell_iterators()) + { + for (unsigned int face = 0; face < GeometryInfo::faces_per_cell; ++face) + { + if (cell->face(face)->at_boundary() == true) + { + if (cell->face(face)->center()[2] == 0.0) + cell->face(face)->set_boundary_id(1); + + else if (cell->face(face)->center()[2] == height) + cell->face(face)->set_boundary_id(2); + + else + { + cell->face(face)->set_boundary_id(0); + cell->face(face)->set_all_manifold_ids(cylinder_id); + } + } + } + } + + GridTools::scale(this->parameters.scale, this->triangulation); + this->triangulation.refine_global(std::max (1U, this->parameters.global_refinement)); + } + + virtual void define_tracked_vertices(std::vector > &tracked_vertices) override + { + tracked_vertices[0][0] = 0.0*this->parameters.scale; + tracked_vertices[0][1] = 0.0*this->parameters.scale; + // tracked_vertices[0][2] = 0.27*this->parameters.scale; + tracked_vertices[0][2] = 0.23*this->parameters.scale; + + tracked_vertices[1][0] = 0.0*this->parameters.scale; + tracked_vertices[1][1] = 0.0*this->parameters.scale; + tracked_vertices[1][2] = 0.0*this->parameters.scale; + } + + virtual void make_dirichlet_constraints(AffineConstraints &constraints) override + { + if (this->time.get_timestep() < 2) + { + VectorTools::interpolate_boundary_values(this->dof_handler_ref, + 1, + Functions::ConstantFunction(this->parameters.drained_pressure,this->n_components), + constraints, + (this->fe.component_mask(this->pressure))); + + VectorTools::interpolate_boundary_values(this->dof_handler_ref, + 2, + Functions::ConstantFunction(this->parameters.drained_pressure,this->n_components), + constraints, + (this->fe.component_mask(this->pressure))); + } + else + { + VectorTools::interpolate_boundary_values(this->dof_handler_ref, + 1, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->pressure))); + + VectorTools::interpolate_boundary_values(this->dof_handler_ref, + 2, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->pressure))); + } + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 0, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->x_displacement)| + this->fe.component_mask(this->y_displacement) ) ); + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 1, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->x_displacement) | + this->fe.component_mask(this->y_displacement) | + this->fe.component_mask(this->z_displacement) )); + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 2, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->x_displacement) | + this->fe.component_mask(this->y_displacement) )); + } + + virtual double + get_prescribed_fluid_flow (const types::boundary_id &boundary_id, + const Point &pt) const override + { + (void)pt; + (void)boundary_id; + return 0.0; + } + + virtual types::boundary_id + get_reaction_boundary_id_for_output() const override + { + return 2; + } + + virtual std::pair + get_drained_boundary_id_for_output() const override + { + return std::make_pair(1,2); + } + + virtual std::vector + get_dirichlet_load(const types::boundary_id &boundary_id, + const int &direction) const override + { + std::vector displ_incr(dim, 0.0); + (void)boundary_id; + (void)direction; + AssertThrow(false, ExcMessage("Displacement loading not implemented for Franceschini examples.")); + + return displ_incr; + } + + virtual Tensor<1,dim> + get_neumann_traction (const types::boundary_id &boundary_id, + const Point &pt, + const Tensor<1,dim> &N) const override + { + if (this->parameters.load_type == "pressure") + { + if (boundary_id == 2) + { + return (this->parameters.load * N); + /* + const double final_load = this->parameters.load; + const double final_load_time = 10 * this->time.get_delta_t(); + const double current_time = this->time.get_current(); + + + const double c = final_load_time / 2.0; + const double r = 200.0 * 0.03 / c; + + const double load = final_load * std::exp(r * current_time) + / ( std::exp(c * current_time) + std::exp(r * current_time)); + return load * N; + */ + } + } + + (void)pt; + + return Tensor<1,dim>(); + } + }; + + // @sect3{Examples to reproduce experiments by Budday et al. 2017} + // We group the definition of the geometry, boundary and loading conditions specific to + // the examples to reproduce experiments by Budday et al. 2017 into specific classes. + + //@sect4{Base class: Cube geometry and loading pattern} + template + class BrainBudday2017BaseCube + : public Solid + { + public: + BrainBudday2017BaseCube (const Parameters::AllParameters ¶meters) + : Solid (parameters) + {} + + virtual ~BrainBudday2017BaseCube () {} + + private: + virtual void + make_grid() override + { + GridGenerator::hyper_cube(this->triangulation, + 0.0, + 1.0, + true); + + typename Triangulation::active_cell_iterator cell = + this->triangulation.begin_active(), endc = this->triangulation.end(); + for (; cell != endc; ++cell) + { + for (unsigned int face = 0; face < GeometryInfo::faces_per_cell; ++face) + if (cell->face(face)->at_boundary() == true && + ( cell->face(face)->boundary_id() == 0 || + cell->face(face)->boundary_id() == 1 || + cell->face(face)->boundary_id() == 2 || + cell->face(face)->boundary_id() == 3 ) ) + + cell->face(face)->set_boundary_id(100); + + } + + GridTools::scale(this->parameters.scale, this->triangulation); + this->triangulation.refine_global(std::max (1U, this->parameters.global_refinement)); + } + + virtual double + get_prescribed_fluid_flow (const types::boundary_id &boundary_id, + const Point &pt) const override + { + (void)pt; + (void)boundary_id; + return 0.0; + } + + virtual std::pair + get_drained_boundary_id_for_output() const override + { + return std::make_pair(100,100); + } + }; + + //@sect4{Derived class: Uniaxial boundary conditions} + template + class BrainBudday2017CubeTensionCompression + : public BrainBudday2017BaseCube + { + public: + BrainBudday2017CubeTensionCompression (const Parameters::AllParameters ¶meters) + : BrainBudday2017BaseCube (parameters) + {} + + virtual ~BrainBudday2017CubeTensionCompression () {} + + private: + virtual void + define_tracked_vertices(std::vector > &tracked_vertices) override + { + tracked_vertices[0][0] = 0.5*this->parameters.scale; + tracked_vertices[0][1] = 0.5*this->parameters.scale; + tracked_vertices[0][2] = 1.0*this->parameters.scale; + + tracked_vertices[1][0] = 0.5*this->parameters.scale; + tracked_vertices[1][1] = 0.5*this->parameters.scale; + tracked_vertices[1][2] = 0.5*this->parameters.scale; + } + + virtual void + make_dirichlet_constraints(AffineConstraints &constraints) override + { + if (this->time.get_timestep() < 2) + { + VectorTools::interpolate_boundary_values(this->dof_handler_ref, + 100, + Functions::ConstantFunction(this->parameters.drained_pressure,this->n_components), + constraints, + (this->fe.component_mask(this->pressure))); + } + else + { + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 100, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->pressure))); + } + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 4, + Functions::ZeroFunction(this->n_components), + constraints, + this->fe.component_mask(this->z_displacement) ); + + Point fix_node(0.5*this->parameters.scale, 0.5*this->parameters.scale, 0.0); + typename DoFHandler::active_cell_iterator + cell = this->dof_handler_ref.begin_active(), endc = this->dof_handler_ref.end(); + for (; cell != endc; ++cell) + for (unsigned int node = 0; node < GeometryInfo::vertices_per_cell; ++node) + { + if ( (abs(cell->vertex(node)[2]-fix_node[2]) < (1e-6 * this->parameters.scale)) + && (abs(cell->vertex(node)[0]-fix_node[0]) < (1e-6 * this->parameters.scale))) + constraints.add_line(cell->vertex_dof_index(node, 0)); + + if ( (abs(cell->vertex(node)[2]-fix_node[2]) < (1e-6 * this->parameters.scale)) + && (abs(cell->vertex(node)[1]-fix_node[1]) < (1e-6 * this->parameters.scale))) + constraints.add_line(cell->vertex_dof_index(node, 1)); + } + + if (this->parameters.load_type == "displacement") + { + const std::vector value = get_dirichlet_load(5,2); + FEValuesExtractors::Scalar direction; + direction = this->z_displacement; + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 5, + Functions::ConstantFunction(value[2],this->n_components), + constraints, + this->fe.component_mask(direction)); + } + } + + virtual Tensor<1,dim> + get_neumann_traction (const types::boundary_id &boundary_id, + const Point &pt, + const Tensor<1,dim> &N) const override + { + if (this->parameters.load_type == "pressure") + { + if (boundary_id == 5) + { + const double final_load = this->parameters.load; + const double current_time = this->time.get_current(); + const double final_time = this->time.get_end(); + const double num_cycles = 3.0; + + return final_load/2.0 * (1.0 - std::sin(numbers::PI * (2.0*num_cycles*current_time/final_time + 0.5))) * N; + } + } + + (void)pt; + + return Tensor<1,dim>(); + } + + virtual types::boundary_id + get_reaction_boundary_id_for_output() const override + { + return 5; + } + + virtual std::vector + get_dirichlet_load(const types::boundary_id &boundary_id, + const int &direction) const override + { + std::vector displ_incr(dim,0.0); + + if ( (boundary_id == 5) && (direction == 2) ) + { + const double final_displ = this->parameters.load; + const double current_time = this->time.get_current(); + const double final_time = this->time.get_end(); + const double delta_time = this->time.get_delta_t(); + const double num_cycles = 3.0; + double current_displ = 0.0; + double previous_displ = 0.0; + + if (this->parameters.num_cycle_sets == 1) + { + current_displ = final_displ/2.0 * (1.0 + - std::sin(numbers::PI * (2.0*num_cycles*current_time/final_time + 0.5))); + previous_displ = final_displ/2.0 * (1.0 + - std::sin(numbers::PI * (2.0*num_cycles*(current_time-delta_time)/final_time + 0.5))); + } + else + { + if ( current_time <= (final_time*1.0/3.0) ) + { + current_displ = final_displ/2.0 * (1.0 - std::sin(numbers::PI * + (2.0*num_cycles*current_time/(final_time*1.0/3.0) + 0.5))); + previous_displ = final_displ/2.0 * (1.0 - std::sin(numbers::PI * + (2.0*num_cycles*(current_time-delta_time)/(final_time*1.0/3.0) + 0.5))); + } + else + { + current_displ = final_displ * (1.0 - std::sin(numbers::PI * + (2.0*num_cycles*current_time / (final_time*2.0/3.0) + - (num_cycles - 0.5) ))); + previous_displ = final_displ * (1.0 - std::sin(numbers::PI * + (2.0*num_cycles*(current_time-delta_time) / (final_time*2.0/3.0) + - (num_cycles - 0.5)))); + } + } + displ_incr[2] = current_displ - previous_displ; + } + return displ_incr; + } + }; + + //@sect4{Derived class: No lateral displacement in loading surfaces} + template + class BrainBudday2017CubeTensionCompressionFullyFixed + : public BrainBudday2017BaseCube + { + public: + BrainBudday2017CubeTensionCompressionFullyFixed (const Parameters::AllParameters ¶meters) + : BrainBudday2017BaseCube (parameters) + {} + + virtual ~BrainBudday2017CubeTensionCompressionFullyFixed () {} + + private: + virtual void + define_tracked_vertices(std::vector > &tracked_vertices) override + { + tracked_vertices[0][0] = 0.5*this->parameters.scale; + tracked_vertices[0][1] = 0.5*this->parameters.scale; + tracked_vertices[0][2] = 1.0*this->parameters.scale; + + tracked_vertices[1][0] = 0.5*this->parameters.scale; + tracked_vertices[1][1] = 0.5*this->parameters.scale; + tracked_vertices[1][2] = 0.5*this->parameters.scale; + } + + virtual void + make_dirichlet_constraints(AffineConstraints &constraints) override + { + if (this->time.get_timestep() < 2) + { + VectorTools::interpolate_boundary_values(this->dof_handler_ref, + 100, + Functions::ConstantFunction(this->parameters.drained_pressure,this->n_components), + constraints, + (this->fe.component_mask(this->pressure))); + } + else + { + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 100, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->pressure))); + } + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 4, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->x_displacement) | + this->fe.component_mask(this->y_displacement) | + this->fe.component_mask(this->z_displacement) )); + + + if (this->parameters.load_type == "displacement") + { + const std::vector value = get_dirichlet_load(5,2); + FEValuesExtractors::Scalar direction; + direction = this->z_displacement; + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 5, + Functions::ConstantFunction(value[2],this->n_components), + constraints, + this->fe.component_mask(direction) ); + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 5, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->x_displacement) | + this->fe.component_mask(this->y_displacement) )); + } + } + + virtual Tensor<1,dim> + get_neumann_traction (const types::boundary_id &boundary_id, + const Point &pt, + const Tensor<1,dim> &N) const override + { + if (this->parameters.load_type == "pressure") + { + if (boundary_id == 5) + { + const double final_load = this->parameters.load; + const double current_time = this->time.get_current(); + const double final_time = this->time.get_end(); + const double num_cycles = 3.0; + + return final_load/2.0 * (1.0 - std::sin(numbers::PI * (2.0*num_cycles*current_time/final_time + 0.5))) * N; + } + } + + (void)pt; + + return Tensor<1,dim>(); + } + + virtual types::boundary_id + get_reaction_boundary_id_for_output() const override + { + return 5; + } + + virtual std::vector + get_dirichlet_load(const types::boundary_id &boundary_id, + const int &direction) const override + { + std::vector displ_incr(dim,0.0); + + if ( (boundary_id == 5) && (direction == 2) ) + { + const double final_displ = this->parameters.load; + const double current_time = this->time.get_current(); + const double final_time = this->time.get_end(); + const double delta_time = this->time.get_delta_t(); + const double num_cycles = 3.0; + double current_displ = 0.0; + double previous_displ = 0.0; + + if (this->parameters.num_cycle_sets == 1) + { + current_displ = final_displ/2.0 * (1.0 - std::sin(numbers::PI * (2.0*num_cycles*current_time/final_time + 0.5))); + previous_displ = final_displ/2.0 * (1.0 - std::sin(numbers::PI * (2.0*num_cycles*(current_time-delta_time)/final_time + 0.5))); + } + else + { + if ( current_time <= (final_time*1.0/3.0) ) + { + current_displ = final_displ/2.0 * (1.0 - std::sin(numbers::PI * + (2.0*num_cycles*current_time/(final_time*1.0/3.0) + 0.5))); + previous_displ = final_displ/2.0 * (1.0 - std::sin(numbers::PI * + (2.0*num_cycles*(current_time-delta_time)/(final_time*1.0/3.0) + 0.5))); + } + else + { + current_displ = final_displ * (1.0 - std::sin(numbers::PI * + (2.0*num_cycles*current_time / (final_time*2.0/3.0) + - (num_cycles - 0.5) ))); + previous_displ = final_displ * (1.0 - std::sin(numbers::PI * + (2.0*num_cycles*(current_time-delta_time) / (final_time*2.0/3.0) + - (num_cycles - 0.5)))); + } + } + displ_incr[2] = current_displ - previous_displ; + } + return displ_incr; + } + }; + + //@sect4{Derived class: No lateral or vertical displacement in loading surface} + template + class BrainBudday2017CubeShearFullyFixed + : public BrainBudday2017BaseCube + { + public: + BrainBudday2017CubeShearFullyFixed (const Parameters::AllParameters ¶meters) + : BrainBudday2017BaseCube (parameters) + {} + + virtual ~BrainBudday2017CubeShearFullyFixed () {} + + private: + virtual void + define_tracked_vertices(std::vector > &tracked_vertices) override + { + tracked_vertices[0][0] = 0.75*this->parameters.scale; + tracked_vertices[0][1] = 0.5*this->parameters.scale; + tracked_vertices[0][2] = 0.0*this->parameters.scale; + + tracked_vertices[1][0] = 0.25*this->parameters.scale; + tracked_vertices[1][1] = 0.5*this->parameters.scale; + tracked_vertices[1][2] = 0.0*this->parameters.scale; + } + + virtual void + make_dirichlet_constraints(AffineConstraints &constraints) override + { + if (this->time.get_timestep() < 2) + { + VectorTools::interpolate_boundary_values(this->dof_handler_ref, + 100, + Functions::ConstantFunction(this->parameters.drained_pressure,this->n_components), + constraints, + (this->fe.component_mask(this->pressure))); + } + else + { + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 100, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->pressure))); + } + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 5, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->x_displacement) | + this->fe.component_mask(this->y_displacement) | + this->fe.component_mask(this->z_displacement) )); + + + if (this->parameters.load_type == "displacement") + { + const std::vector value = get_dirichlet_load(4,0); + FEValuesExtractors::Scalar direction; + direction = this->x_displacement; + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 4, + Functions::ConstantFunction(value[0],this->n_components), + constraints, + this->fe.component_mask(direction)); + + VectorTools::interpolate_boundary_values( this->dof_handler_ref, + 4, + Functions::ZeroFunction(this->n_components), + constraints, + (this->fe.component_mask(this->y_displacement) | + this->fe.component_mask(this->z_displacement) )); + } + } + + virtual Tensor<1,dim> + get_neumann_traction (const types::boundary_id &boundary_id, + const Point &pt, + const Tensor<1,dim> &N) const override + { + if (this->parameters.load_type == "pressure") + { + if (boundary_id == 4) + { + const double final_load = this->parameters.load; + const double current_time = this->time.get_current(); + const double final_time = this->time.get_end(); + const double num_cycles = 3.0; + const Tensor<1,3> axis ({0.0,1.0,0.0}); + const double angle = numbers::PI; + static const Tensor< 2, dim, double> R(Physics::Transformations::Rotations::rotation_matrix_3d(axis,angle)); + + return (final_load * (std::sin(2.0*(numbers::PI)*num_cycles*current_time/final_time)) * (R * N)); + } + } + + (void)pt; + + return Tensor<1,dim>(); + } + + virtual types::boundary_id + get_reaction_boundary_id_for_output() const override + { + return 4; + } + + virtual std::vector + get_dirichlet_load(const types::boundary_id &boundary_id, + const int &direction) const override + { + std::vector displ_incr (dim, 0.0); + + if ( (boundary_id == 4) && (direction == 0) ) + { + const double final_displ = this->parameters.load; + const double current_time = this->time.get_current(); + const double final_time = this->time.get_end(); + const double delta_time = this->time.get_delta_t(); + const double num_cycles = 3.0; + double current_displ = 0.0; + double previous_displ = 0.0; + + if (this->parameters.num_cycle_sets == 1) + { + current_displ = final_displ * (std::sin(2.0*(numbers::PI)*num_cycles*current_time/final_time)); + previous_displ = final_displ * (std::sin(2.0*(numbers::PI)*num_cycles*(current_time-delta_time)/final_time)); + } + else + { + AssertThrow(false, ExcMessage("Problem type not defined. Budday shear experiments implemented only for one set of cycles.")); + } + displ_incr[0] = current_displ - previous_displ; + } + return displ_incr; + } + }; + +} + +// @sect3{Main function} +// Lastly we provide the main driver function which is similar to the other tutorials. +int main (int argc, char *argv[]) +{ + using namespace dealii; + using namespace NonLinearPoroViscoElasticity; + + const unsigned int n_tbb_processes = 1; + Utilities::MPI::MPI_InitFinalize mpi_initialization(argc, argv, n_tbb_processes); + + try + { + Parameters::AllParameters parameters ("parameters.prm"); + if (parameters.geom_type == "Ehlers_tube_step_load") + { + VerificationEhlers1999StepLoad<3> solid_3d(parameters); + solid_3d.run(); + } + else if (parameters.geom_type == "Ehlers_tube_increase_load") + { + VerificationEhlers1999IncreaseLoad<3> solid_3d(parameters); + solid_3d.run(); + } + else if (parameters.geom_type == "Ehlers_cube_consolidation") + { + VerificationEhlers1999CubeConsolidation<3> solid_3d(parameters); + solid_3d.run(); + } + else if (parameters.geom_type == "Franceschini_consolidation") + { + Franceschini2006Consolidation<3> solid_3d(parameters); + solid_3d.run(); + } + else if (parameters.geom_type == "Budday_cube_tension_compression") + { + BrainBudday2017CubeTensionCompression<3> solid_3d(parameters); + solid_3d.run(); + } + else if (parameters.geom_type == "Budday_cube_tension_compression_fully_fixed") + { + BrainBudday2017CubeTensionCompressionFullyFixed<3> solid_3d(parameters); + solid_3d.run(); + } + else if (parameters.geom_type == "Budday_cube_shear_fully_fixed") + { + BrainBudday2017CubeShearFullyFixed<3> solid_3d(parameters); + solid_3d.run(); + } + else + { + AssertThrow(false, ExcMessage("Problem type not defined. Current setting: " + parameters.geom_type)); + } + + } + catch (std::exception &exc) + { + if (Utilities::MPI::this_mpi_process(MPI_COMM_WORLD) == 0) + { + std::cerr << std::endl << std::endl + << "----------------------------------------------------" + << std::endl; + std::cerr << "Exception on processing: " << std::endl << exc.what() + << std::endl << "Aborting!" << std::endl + << "----------------------------------------------------" + << std::endl; + + return 1; + } + } + catch (...) + { + if (Utilities::MPI::this_mpi_process(MPI_COMM_WORLD) == 0) + { + std::cerr << std::endl << std::endl + << "----------------------------------------------------" + << std::endl; + std::cerr << "Unknown exception!" << std::endl << "Aborting!" + << std::endl + << "----------------------------------------------------" + << std::endl; + return 1; + } + } + return 0; +}